Skip to main content
Erschienen in: Journal of Materials Science 21/2021

27.04.2021 | Review

Applications of carbon quantum dots in lubricant additives: a review

verfasst von: Weiwei Tang, Zhe Zhang, Yufeng Li

Erschienen in: Journal of Materials Science | Ausgabe 21/2021

Einloggen

Aktivieren Sie unsere intelligente Suche, um passende Fachinhalte oder Patente zu finden.

search-config
loading …

Abstract

Advances in lubricants are vital to the pursuit of energy efficiency and sustainable development. It is well known that the essence of lubricating oil is lubricant additives, especially the friction-reducing and anti-wear additives. Carbon quantum dots (CQDs), a novel zero-dimensional carbon-based nanomaterial, have attained growing expectations in material and chemical sciences because of their extraordinary properties such as low toxicity and environmentally friendly, high chemical and thermal stability, and good designability. Since their discovery, CQDs have shown great potential in many applications including sensors, medicine, photovoltaic devices, biology, and tribology. The latest application of CQDs as the high-performance friction-reducing and anti-wear additives has garnered increasing attention. With the in-depth study, CQDs have gradually exhibited their excellent tribological properties, especially acted as additives in lubricating base oils. This paper has reviewed the progress in the research and development of CQDs-based lubricant additives by introducing lots of successful applications of CQDs-based additives in the present work and then highlighted the friction-reducing and anti-wear property, superiority, as well as the lubrication mechanism of CQDs as an additive, along with some discussion on challenges and perspectives in this significant and promising field. Finally, we offered a series of suggestions for developing the next-generation high-performance CQDs-based lubricant additives.

Graphical abstract

This work presented the carbon quantum dots as the lubricant additives of lubricating base oils.

Sie haben noch keine Lizenz? Dann Informieren Sie sich jetzt über unsere Produkte:

Springer Professional "Wirtschaft+Technik"

Online-Abonnement

Mit Springer Professional "Wirtschaft+Technik" erhalten Sie Zugriff auf:

  • über 102.000 Bücher
  • über 537 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Finance + Banking
  • Management + Führung
  • Marketing + Vertrieb
  • Maschinenbau + Werkstoffe
  • Versicherung + Risiko

Jetzt Wissensvorsprung sichern!

Springer Professional "Technik"

Online-Abonnement

Mit Springer Professional "Technik" erhalten Sie Zugriff auf:

  • über 67.000 Bücher
  • über 390 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Maschinenbau + Werkstoffe




 

Jetzt Wissensvorsprung sichern!

Literatur
1.
Zurück zum Zitat Bhushan B, Israelachvili JN, Landman U (1995) Nanotribology: friction, wear and lubrication at the atomic scale. Nature 374(6523):607–616CrossRef Bhushan B, Israelachvili JN, Landman U (1995) Nanotribology: friction, wear and lubrication at the atomic scale. Nature 374(6523):607–616CrossRef
2.
Zurück zum Zitat Myshkin NK, Petrokovets MI, Kovalev AV (2005) Tribology of polymers: adhesion, friction, wear, and mass-transfer. Tribol Int 38(11–12):910–921CrossRef Myshkin NK, Petrokovets MI, Kovalev AV (2005) Tribology of polymers: adhesion, friction, wear, and mass-transfer. Tribol Int 38(11–12):910–921CrossRef
3.
Zurück zum Zitat Cai MR, Guo RS, Zhou F, Liu WM (2013) Lubricating a bright future: lubrication contribution to energy saving and low carbon emission. Sci China Technol Sci 56(12):2888–2913CrossRef Cai MR, Guo RS, Zhou F, Liu WM (2013) Lubricating a bright future: lubrication contribution to energy saving and low carbon emission. Sci China Technol Sci 56(12):2888–2913CrossRef
4.
Zurück zum Zitat Qiao H, Zheng F, Jiang H, Dong KY (2019) The greenhouse effect of the agriculture-economic growth-renewable energy nexus: evidence from G20 countries. Sci Total Environ 671:722–731CrossRef Qiao H, Zheng F, Jiang H, Dong KY (2019) The greenhouse effect of the agriculture-economic growth-renewable energy nexus: evidence from G20 countries. Sci Total Environ 671:722–731CrossRef
5.
Zurück zum Zitat Stephens GL, Kahn BH, Richardson M (2016) The super greenhouse effect in a changing climate. J Clim 29(15):5469–5482CrossRef Stephens GL, Kahn BH, Richardson M (2016) The super greenhouse effect in a changing climate. J Clim 29(15):5469–5482CrossRef
6.
Zurück zum Zitat Dufresne JL, Eymet V, Crevoisier C (2020) Greenhouse effect: the relative contributions of emission height and total absorption. J Clim 33(9):3827–3844CrossRef Dufresne JL, Eymet V, Crevoisier C (2020) Greenhouse effect: the relative contributions of emission height and total absorption. J Clim 33(9):3827–3844CrossRef
7.
Zurück zum Zitat Tan XC, Li H, Guo JX, Gu BH, Zeng Y (2019) Energy-saving and emission-reduction technology selection and CO2 emission reduction potential of China’s iron and steel industry under energy substitution policy. J Clean Prod 222:823–834CrossRef Tan XC, Li H, Guo JX, Gu BH, Zeng Y (2019) Energy-saving and emission-reduction technology selection and CO2 emission reduction potential of China’s iron and steel industry under energy substitution policy. J Clean Prod 222:823–834CrossRef
8.
Zurück zum Zitat Li S, Niu D, Wu L (2018) Evaluation of energy saving and emission reduction effects for electricity retailers in China based on fuzzy combination weighting method. Appl Sci 8(9):1564–1587CrossRef Li S, Niu D, Wu L (2018) Evaluation of energy saving and emission reduction effects for electricity retailers in China based on fuzzy combination weighting method. Appl Sci 8(9):1564–1587CrossRef
9.
Zurück zum Zitat Hori Y (2016) Hydrodynamic lubrication. Springer, Berlin Hori Y (2016) Hydrodynamic lubrication. Springer, Berlin
10.
Zurück zum Zitat Pirso J, Letunovitš S, Viljus M (2004) Friction and wear behaviour of cemented carbides. Wear 257(3–4):257–265CrossRef Pirso J, Letunovitš S, Viljus M (2004) Friction and wear behaviour of cemented carbides. Wear 257(3–4):257–265CrossRef
11.
Zurück zum Zitat Briscoe WH, Titmuss S, Tiberg F, Thomas RK, McGillivray DJ, Klein J (2006) Boundary lubrication under water. Nature 444(7116):191–194CrossRef Briscoe WH, Titmuss S, Tiberg F, Thomas RK, McGillivray DJ, Klein J (2006) Boundary lubrication under water. Nature 444(7116):191–194CrossRef
12.
Zurück zum Zitat Wu SA, He F, Xie GX, Bian ZL, Luo JB, Wen SZ (2018) Black phosphorus: degradation favors lubrication. Nano let 18(9):5618–5627CrossRef Wu SA, He F, Xie GX, Bian ZL, Luo JB, Wen SZ (2018) Black phosphorus: degradation favors lubrication. Nano let 18(9):5618–5627CrossRef
13.
Zurück zum Zitat Ma L, Luo J (2016) Thin film lubrication in the past 20 years. Friction 4(4):280–302CrossRef Ma L, Luo J (2016) Thin film lubrication in the past 20 years. Friction 4(4):280–302CrossRef
14.
Zurück zum Zitat Putignano C, Dini D (2017) Soft matter lubrication: does solid viscoelasticity matter? ACS Appl Mater Inter 9(48):42287–42295CrossRef Putignano C, Dini D (2017) Soft matter lubrication: does solid viscoelasticity matter? ACS Appl Mater Inter 9(48):42287–42295CrossRef
15.
Zurück zum Zitat Tomala A, Karpinska A, Werner WSM, Olver A, Störi H (2010) Tribological properties of additives for water-based lubricants. Wear 269(11–12):804–810CrossRef Tomala A, Karpinska A, Werner WSM, Olver A, Störi H (2010) Tribological properties of additives for water-based lubricants. Wear 269(11–12):804–810CrossRef
16.
Zurück zum Zitat Li ZX, Ma SH, Zhang G, Wang DA, Zhou F (2018) Soft/hard-coupled amphiphilic polymer nanospheres for water lubrication. ACS Appl Mater Inter 10(10):9178–9187CrossRef Li ZX, Ma SH, Zhang G, Wang DA, Zhou F (2018) Soft/hard-coupled amphiphilic polymer nanospheres for water lubrication. ACS Appl Mater Inter 10(10):9178–9187CrossRef
17.
Zurück zum Zitat Niiyama Y, Takeno T, Kurihara K, Adachi K (2017) Effect of sliding history on super-low friction of diamond-like carbon coating in water lubrication. Tribo Lett 65(2):63–76CrossRef Niiyama Y, Takeno T, Kurihara K, Adachi K (2017) Effect of sliding history on super-low friction of diamond-like carbon coating in water lubrication. Tribo Lett 65(2):63–76CrossRef
18.
Zurück zum Zitat Ma L, Gaisinskaya-Kipnis A, Kampf N, Klein J (2015) Origins of hydration lubrication. Nat Commun 6(1):1–6 Ma L, Gaisinskaya-Kipnis A, Kampf N, Klein J (2015) Origins of hydration lubrication. Nat Commun 6(1):1–6
19.
Zurück zum Zitat Zzeyani S, Mikou M, Naja J (2017) Spectroscopic analysis of synthetic lubricating oil. Tribol Int 114:27–32CrossRef Zzeyani S, Mikou M, Naja J (2017) Spectroscopic analysis of synthetic lubricating oil. Tribol Int 114:27–32CrossRef
20.
Zurück zum Zitat Khan A, Gusain R, Sahai M, Khatri OP (2019) Fatty acids-derived protic ionic liquids as lubricant additive to synthetic lube base oil for enhancement of tribological properties. J Mol Liq 293:111444–111453CrossRef Khan A, Gusain R, Sahai M, Khatri OP (2019) Fatty acids-derived protic ionic liquids as lubricant additive to synthetic lube base oil for enhancement of tribological properties. J Mol Liq 293:111444–111453CrossRef
21.
Zurück zum Zitat Syahir AZ, Zulkifli NWM, Masjuki HH (2020) Tribological improvement using ionic liquids as additives in synthetic and bio-based lubricants for steel-steel contacts. Tribol T 63(2):235–250CrossRef Syahir AZ, Zulkifli NWM, Masjuki HH (2020) Tribological improvement using ionic liquids as additives in synthetic and bio-based lubricants for steel-steel contacts. Tribol T 63(2):235–250CrossRef
22.
Zurück zum Zitat Martini A, Ramasamy US, Len M (2018) Review of viscosity modifier lubricant additives. Tribol Lett 66(2):1–14CrossRef Martini A, Ramasamy US, Len M (2018) Review of viscosity modifier lubricant additives. Tribol Lett 66(2):1–14CrossRef
23.
Zurück zum Zitat Zhou Y, Qu J (2017) Ionic liquids as lubricant additives: a review. ACS Appl Mater Inter 9(4):3209–3222CrossRef Zhou Y, Qu J (2017) Ionic liquids as lubricant additives: a review. ACS Appl Mater Inter 9(4):3209–3222CrossRef
24.
Zurück zum Zitat Joly-Pottuz L, Dassenoy F, Belin M, Vacher B, Martin JM, Fleischer N (2005) Ultralow-friction and wear properties of IF-WS2 under boundary lubrication. Tribol Lett 18(4):477–485CrossRef Joly-Pottuz L, Dassenoy F, Belin M, Vacher B, Martin JM, Fleischer N (2005) Ultralow-friction and wear properties of IF-WS2 under boundary lubrication. Tribol Lett 18(4):477–485CrossRef
25.
Zurück zum Zitat Perez-Martinez CS, Perkin S (2019) Interfacial structure and boundary lubrication of a dicationic ionic liquid. Langmuir 35(48):15444–15450CrossRef Perez-Martinez CS, Perkin S (2019) Interfacial structure and boundary lubrication of a dicationic ionic liquid. Langmuir 35(48):15444–15450CrossRef
26.
Zurück zum Zitat Upadhyay RK, Kumar A (2019) Boundary lubrication properties and contact mechanism of carbon/MoS2 based nanolubricants under steel/steel contact. Coll Interface Sci Commun 31:100186–100195CrossRef Upadhyay RK, Kumar A (2019) Boundary lubrication properties and contact mechanism of carbon/MoS2 based nanolubricants under steel/steel contact. Coll Interface Sci Commun 31:100186–100195CrossRef
27.
Zurück zum Zitat Li C, Li ML, Wang XY, Feng WM, Zhang QQ, Wu B, Hu XG (2019) Novel carbon nanoparticles derived from biodiesel soot as lubricant additives. Nanomaterials 9(8):1115–1128CrossRef Li C, Li ML, Wang XY, Feng WM, Zhang QQ, Wu B, Hu XG (2019) Novel carbon nanoparticles derived from biodiesel soot as lubricant additives. Nanomaterials 9(8):1115–1128CrossRef
28.
Zurück zum Zitat Zhao J, Li YR, He YY, Luo JB (2019) In situ green synthesis of the new sandwichlike nanostructure of Mn3O4/graphene as lubricant additives. ACS Appl Mater Inter 11(40):36931–36938CrossRef Zhao J, Li YR, He YY, Luo JB (2019) In situ green synthesis of the new sandwichlike nanostructure of Mn3O4/graphene as lubricant additives. ACS Appl Mater Inter 11(40):36931–36938CrossRef
30.
Zurück zum Zitat Lan P, Iaccino LL, Bao X, Polycarpou AA (2020) The effect of lubricant additives on the tribological performance of oil and gas drilling applications up to 200 °C. Tribol Int 141:105896–105906CrossRef Lan P, Iaccino LL, Bao X, Polycarpou AA (2020) The effect of lubricant additives on the tribological performance of oil and gas drilling applications up to 200 °C. Tribol Int 141:105896–105906CrossRef
31.
Zurück zum Zitat Ma R, Zhao Q, Zhang EH, Zheng DD, Li WM, Wang XB (2020) Synthesis and evaluation of oil-soluble ionic liquids as multifunctional lubricant additives. Tribol Int 151:106446–106453CrossRef Ma R, Zhao Q, Zhang EH, Zheng DD, Li WM, Wang XB (2020) Synthesis and evaluation of oil-soluble ionic liquids as multifunctional lubricant additives. Tribol Int 151:106446–106453CrossRef
32.
Zurück zum Zitat Sadanandan AM, Khatri PK, Saxena RC, Jain SL (2020) Guanidine based amino acid derived task specific ionic liquids as noncorrosive lubricant additives for tribological performance. J Mol Liq 313:113527–113536CrossRef Sadanandan AM, Khatri PK, Saxena RC, Jain SL (2020) Guanidine based amino acid derived task specific ionic liquids as noncorrosive lubricant additives for tribological performance. J Mol Liq 313:113527–113536CrossRef
33.
Zurück zum Zitat He ZB, Min CY, Yang YZ, Zhang K, Dong CK, Zhou YH, Shen WX (2020) Synthesis by partial oxygenation of graphite-like carbon nitride (OCN) decorated with oleic diethanolamide borate (ODAB) for oil-based lubricant additives and its tribological properties. New J Chem 44(14):5377–5385CrossRef He ZB, Min CY, Yang YZ, Zhang K, Dong CK, Zhou YH, Shen WX (2020) Synthesis by partial oxygenation of graphite-like carbon nitride (OCN) decorated with oleic diethanolamide borate (ODAB) for oil-based lubricant additives and its tribological properties. New J Chem 44(14):5377–5385CrossRef
34.
Zurück zum Zitat Minami I (2017) Molecular science of lubricant additives. Appl Sci 7(5):445–477CrossRef Minami I (2017) Molecular science of lubricant additives. Appl Sci 7(5):445–477CrossRef
35.
Zurück zum Zitat Parenago OP, Kuzmina GN, Zaimovskaya TA (2017) Sulfur-containing molybdenum compounds as high-performance lubricant additives. Petrol Chem 57(8):631–642CrossRef Parenago OP, Kuzmina GN, Zaimovskaya TA (2017) Sulfur-containing molybdenum compounds as high-performance lubricant additives. Petrol Chem 57(8):631–642CrossRef
36.
Zurück zum Zitat Kumari S, Mungse HP, Gusain R, Kumar N, Sugimura H, Khatri OP (2017) Octadecanethiol-grafted molybdenum disulfide nanosheets as oil-dispersible additive for reduction of friction and wear. FlatChem 3:16–25CrossRef Kumari S, Mungse HP, Gusain R, Kumar N, Sugimura H, Khatri OP (2017) Octadecanethiol-grafted molybdenum disulfide nanosheets as oil-dispersible additive for reduction of friction and wear. FlatChem 3:16–25CrossRef
37.
Zurück zum Zitat Liu L, Liu ZQ, Huang P, Wu Z, Jiang SY (2016) Protein-induced ultrathin molybdenum disulfide (MoS2) flakes for a water-based lubricating system. RSC Adv 6(114):113315–113321CrossRef Liu L, Liu ZQ, Huang P, Wu Z, Jiang SY (2016) Protein-induced ultrathin molybdenum disulfide (MoS2) flakes for a water-based lubricating system. RSC Adv 6(114):113315–113321CrossRef
38.
Zurück zum Zitat Wan SH, Tieu AK, Xia YN, Zhu HT, Tran BH, Cui SG (2016) An overview of inorganic polymer as potential lubricant additive for high temperature tribology. Tribol Int 102:620–635CrossRef Wan SH, Tieu AK, Xia YN, Zhu HT, Tran BH, Cui SG (2016) An overview of inorganic polymer as potential lubricant additive for high temperature tribology. Tribol Int 102:620–635CrossRef
39.
Zurück zum Zitat Xia YQ, Xu XC, Feng X, Chen GX (2015) Leaf-surface wax of desert plants as a potential lubricant additive. Friction 3(3):208–213CrossRef Xia YQ, Xu XC, Feng X, Chen GX (2015) Leaf-surface wax of desert plants as a potential lubricant additive. Friction 3(3):208–213CrossRef
40.
Zurück zum Zitat Mosey NJ, Müser MH, Woo TK (2005) Molecular mechanisms for the functionality of lubricant additives. Science 307(5715):1612–1615CrossRef Mosey NJ, Müser MH, Woo TK (2005) Molecular mechanisms for the functionality of lubricant additives. Science 307(5715):1612–1615CrossRef
41.
Zurück zum Zitat Johnson DW, Hils JE (2013) Phosphate esters, thiophosphate esters and metal thiophosphates as lubricant additives. Lubricants 1(4):132–148CrossRef Johnson DW, Hils JE (2013) Phosphate esters, thiophosphate esters and metal thiophosphates as lubricant additives. Lubricants 1(4):132–148CrossRef
42.
Zurück zum Zitat Li ZP, Li YL, Zhang YW, Ren TH, Zhao YD (2014) Tribological study of hydrolytically stable S-containing alkyl phenylboric esters as lubricant additives. RSC Adv 4(48):25118–25126CrossRef Li ZP, Li YL, Zhang YW, Ren TH, Zhao YD (2014) Tribological study of hydrolytically stable S-containing alkyl phenylboric esters as lubricant additives. RSC Adv 4(48):25118–25126CrossRef
43.
Zurück zum Zitat Paouris L, Rahmani R, Theodossiades S, Rahnejat H, Hunt G, Barton W (2018) Inefficiency predictions in a hypoid gear pair through tribodynamics analysis. Tribol Int 119:631–644CrossRef Paouris L, Rahmani R, Theodossiades S, Rahnejat H, Hunt G, Barton W (2018) Inefficiency predictions in a hypoid gear pair through tribodynamics analysis. Tribol Int 119:631–644CrossRef
44.
Zurück zum Zitat Fan X, Wang L, Xia Y (2015) Oil-soluble lithium salts as novel lubricant additives towards improving conductivity and tribological performance of bentone grease. Lubr Sci 27(6):359–368CrossRef Fan X, Wang L, Xia Y (2015) Oil-soluble lithium salts as novel lubricant additives towards improving conductivity and tribological performance of bentone grease. Lubr Sci 27(6):359–368CrossRef
45.
Zurück zum Zitat Kato S, Sasaki S (2019) Effects of hydraulic oil and lubricant additives on dynamic friction properties under various reciprocating sliding conditions. Friction 8(2):471–480 Kato S, Sasaki S (2019) Effects of hydraulic oil and lubricant additives on dynamic friction properties under various reciprocating sliding conditions. Friction 8(2):471–480
46.
Zurück zum Zitat Stump BC, Zhou Y, Luo HM, Leonard DN, Viola MB, Qu J (2019) New Functionality of ionic liquids as lubricant additives: mitigating rolling contact fatigue. ACS Appl Mater Inter 11(33):30484–30492CrossRef Stump BC, Zhou Y, Luo HM, Leonard DN, Viola MB, Qu J (2019) New Functionality of ionic liquids as lubricant additives: mitigating rolling contact fatigue. ACS Appl Mater Inter 11(33):30484–30492CrossRef
47.
Zurück zum Zitat Yang ZQ, Sun CF, Zhang CY, Zhao SJ, Cai MR, Liu ZL, Yu QL (2020) Amino acid ionic liquids as anticorrosive and lubricating additives for water and their environmental impact. Tribol Int 153:106663–106675CrossRef Yang ZQ, Sun CF, Zhang CY, Zhao SJ, Cai MR, Liu ZL, Yu QL (2020) Amino acid ionic liquids as anticorrosive and lubricating additives for water and their environmental impact. Tribol Int 153:106663–106675CrossRef
48.
Zurück zum Zitat Khan A, Yasa SR, Gusain R, Khatri OP (2020) Oil-miscible, halogen-free, and surface-active lauryl sulphate-derived ionic liquids for enhancement of tribological properties. J Mol Liq 318:114005–114013CrossRef Khan A, Yasa SR, Gusain R, Khatri OP (2020) Oil-miscible, halogen-free, and surface-active lauryl sulphate-derived ionic liquids for enhancement of tribological properties. J Mol Liq 318:114005–114013CrossRef
49.
Zurück zum Zitat Yu QL, Zhang CY, Dong R, Shi YJ, Wang YR, Bai YY, Zhang JY, Cai MR, et al (2021) Physicochemical and tribological properties of gemini-type halogen-free dicationic ionic liquids. Friction 9:344–355 Yu QL, Zhang CY, Dong R, Shi YJ, Wang YR, Bai YY, Zhang JY, Cai MR, et al (2021) Physicochemical and tribological properties of gemini-type halogen-free dicationic ionic liquids. Friction 9:344–355
50.
Zurück zum Zitat Antunes M, Donato MT, Paz V, Caetano F, Santos L, Colaço R, Branco LC, Saramago B (2020) Improving the lubrication of silicon surfaces using ionic liquids as oil additives: the effect of sulfur-based functional groups. Tribol Lett 68:1–14CrossRef Antunes M, Donato MT, Paz V, Caetano F, Santos L, Colaço R, Branco LC, Saramago B (2020) Improving the lubrication of silicon surfaces using ionic liquids as oil additives: the effect of sulfur-based functional groups. Tribol Lett 68:1–14CrossRef
51.
Zurück zum Zitat Mu LW, Shi YJ, Guo XJ, Wu J, Ji T, Chen L, Feng X, Lu XH et al (2016) Enriching heteroelements in lignin as lubricating additives for bioionic liquids. ACS Sustain Chem Eng 4(7):3877–3887CrossRef Mu LW, Shi YJ, Guo XJ, Wu J, Ji T, Chen L, Feng X, Lu XH et al (2016) Enriching heteroelements in lignin as lubricating additives for bioionic liquids. ACS Sustain Chem Eng 4(7):3877–3887CrossRef
52.
Zurück zum Zitat Singh T, Singh R, Verma VK, Nakayama K (2016) A study of N, O and S heterocyclic compounds as extreme pressure lubricant additives. Tribol Int 23(1):41–46CrossRef Singh T, Singh R, Verma VK, Nakayama K (2016) A study of N, O and S heterocyclic compounds as extreme pressure lubricant additives. Tribol Int 23(1):41–46CrossRef
53.
Zurück zum Zitat Yu QL, Zhang CY, Dong R, Shi YJ, Wang YR, Bai YY, Zhang JY, Cai MR et al (2019) Novel N, P-containing oil-soluble ionic liquids with excellent tribological and anti-corrosion performance. Tribol Int 132:118–129CrossRef Yu QL, Zhang CY, Dong R, Shi YJ, Wang YR, Bai YY, Zhang JY, Cai MR et al (2019) Novel N, P-containing oil-soluble ionic liquids with excellent tribological and anti-corrosion performance. Tribol Int 132:118–129CrossRef
54.
Zurück zum Zitat Li Z, Ren T (2017) Synergistic effects between alkylphosphate-ammonium ionic liquid and alkylphenylborate as lubricant additives in rapeseed oil. Tribol Int 109:373–381CrossRef Li Z, Ren T (2017) Synergistic effects between alkylphosphate-ammonium ionic liquid and alkylphenylborate as lubricant additives in rapeseed oil. Tribol Int 109:373–381CrossRef
55.
Zurück zum Zitat Uflyand IE, Zhinzhilo VA, Burlakova VE (2019) Metal-containing nanomaterials as lubricant additives: state-of-the-art and future development. Friction 7(2):93–116CrossRef Uflyand IE, Zhinzhilo VA, Burlakova VE (2019) Metal-containing nanomaterials as lubricant additives: state-of-the-art and future development. Friction 7(2):93–116CrossRef
56.
Zurück zum Zitat Kumara C, Luo HM, Leonard DN, Meyer HM, Qu J (2017) Organic-modified silver nanoparticles as lubricant additives. ACS Appl Mater Inter 9(42):37227–37237CrossRef Kumara C, Luo HM, Leonard DN, Meyer HM, Qu J (2017) Organic-modified silver nanoparticles as lubricant additives. ACS Appl Mater Inter 9(42):37227–37237CrossRef
57.
Zurück zum Zitat Choi Y, Lee C, Hwang Y, Park M, Lee J, Choi C, Jung M (2009) Tribological behavior of copper nanoparticles as additives in oil. Curr Appl Phys 9(2):124–127CrossRef Choi Y, Lee C, Hwang Y, Park M, Lee J, Choi C, Jung M (2009) Tribological behavior of copper nanoparticles as additives in oil. Curr Appl Phys 9(2):124–127CrossRef
58.
Zurück zum Zitat Jaiswal V, Umrao S, Rastogi RB, Kumar R, Srivastava A (2016) Synthesis, characterization, and tribological evaluation of TiO2-reinforced boron and nitrogen co-doped reduced graphene oxide based hybrid nanomaterials as efficient anti-wear lubricant additives. ACS Appl Mater Inter 8(18):11698–11710CrossRef Jaiswal V, Umrao S, Rastogi RB, Kumar R, Srivastava A (2016) Synthesis, characterization, and tribological evaluation of TiO2-reinforced boron and nitrogen co-doped reduced graphene oxide based hybrid nanomaterials as efficient anti-wear lubricant additives. ACS Appl Mater Inter 8(18):11698–11710CrossRef
59.
Zurück zum Zitat Espina CJ, Fernandez GA, José DRHÁ (2017) Unctuous ZrO2 nanoparticles with improved functional attributes as lubricant additives. Nanot 28(49):495704–495714CrossRef Espina CJ, Fernandez GA, José DRHÁ (2017) Unctuous ZrO2 nanoparticles with improved functional attributes as lubricant additives. Nanot 28(49):495704–495714CrossRef
60.
Zurück zum Zitat Shrestha BK, Trital HM, Rajbhandari A (2020) Synthesis and characterization of CuO-ZnO nano additive for lubricant. Sci World 13(13):33–36CrossRef Shrestha BK, Trital HM, Rajbhandari A (2020) Synthesis and characterization of CuO-ZnO nano additive for lubricant. Sci World 13(13):33–36CrossRef
61.
Zurück zum Zitat Zhang XH, Xu HX, Wang JT, Ye X, Lei WN, Xue MQ, Tang H, Li CS (2016) Synthesis of ultrathin WS2 nanosheets and their tribological properties as lubricant additives. Nanoscale Res lett 11(1):1–9CrossRef Zhang XH, Xu HX, Wang JT, Ye X, Lei WN, Xue MQ, Tang H, Li CS (2016) Synthesis of ultrathin WS2 nanosheets and their tribological properties as lubricant additives. Nanoscale Res lett 11(1):1–9CrossRef
62.
Zurück zum Zitat Ripoll MR, Tomala AM, Pirker L, Remškar M (2020) In-situ formation of MoS2 and WS2 tribofilms by the synergy between transition metal oxide nanoparticles and sulphur-containing oil additives. Tribol Lett 68(1):1–13 Ripoll MR, Tomala AM, Pirker L, Remškar M (2020) In-situ formation of MoS2 and WS2 tribofilms by the synergy between transition metal oxide nanoparticles and sulphur-containing oil additives. Tribol Lett 68(1):1–13
63.
Zurück zum Zitat Martin JM, Onodera T, Bouchet MIDB, Hatakeyama N, Miyamoto A (2013) Anti-wear chemistry of ZDDP and calcium borate nano-additive Coupling experiments chemical hardness predictions and MD calculations. Tribol Lett 50(1):95–104CrossRef Martin JM, Onodera T, Bouchet MIDB, Hatakeyama N, Miyamoto A (2013) Anti-wear chemistry of ZDDP and calcium borate nano-additive Coupling experiments chemical hardness predictions and MD calculations. Tribol Lett 50(1):95–104CrossRef
64.
Zurück zum Zitat Akbulut M (2012) Nanoparticle-based lubrication systems. J Powder Metall Min 1(1):1–3CrossRef Akbulut M (2012) Nanoparticle-based lubrication systems. J Powder Metall Min 1(1):1–3CrossRef
65.
Zurück zum Zitat Wright RAE, Wang K, Qu J, Zhao B (2016) Oil-soluble polymer brush grafted nanoparticles as effective lubricant additives for friction and wear reduction. Angew Chem 128(30):8798–8802CrossRef Wright RAE, Wang K, Qu J, Zhao B (2016) Oil-soluble polymer brush grafted nanoparticles as effective lubricant additives for friction and wear reduction. Angew Chem 128(30):8798–8802CrossRef
66.
Zurück zum Zitat Zhang ZJ, Simionesie D, Schaschke C (2014) Graphite and hybrid nanomaterials as lubricant additives. Lubricants 2(2):44–65CrossRef Zhang ZJ, Simionesie D, Schaschke C (2014) Graphite and hybrid nanomaterials as lubricant additives. Lubricants 2(2):44–65CrossRef
67.
Zurück zum Zitat Salah N, Abdel-Wahab MS, Alshahrie A, Alharbi ND, Khan ZH (2017) Carbon nanotubes of oil fly ash as lubricant additives for different base oils and their tribology performance. RSC Adv 7(64):40295–40302CrossRef Salah N, Abdel-Wahab MS, Alshahrie A, Alharbi ND, Khan ZH (2017) Carbon nanotubes of oil fly ash as lubricant additives for different base oils and their tribology performance. RSC Adv 7(64):40295–40302CrossRef
68.
Zurück zum Zitat Su F, Chen G, Huang P (2020) Lubricating performances of graphene oxide and onion-like carbon as water-based lubricant additives for smooth and sand-blasted steel discs. Friction 8(1):47–57CrossRef Su F, Chen G, Huang P (2020) Lubricating performances of graphene oxide and onion-like carbon as water-based lubricant additives for smooth and sand-blasted steel discs. Friction 8(1):47–57CrossRef
69.
Zurück zum Zitat Xie HM, Dang SH, Jiang B, Xiang L, Zhou S, Sheng HR, Yang TH, Pan FS (2019) Tribological performances of SiO2/graphene combinations as water-based lubricant additives for magnesium alloy rolling. Appl Surf Sci 475:847–856CrossRef Xie HM, Dang SH, Jiang B, Xiang L, Zhou S, Sheng HR, Yang TH, Pan FS (2019) Tribological performances of SiO2/graphene combinations as water-based lubricant additives for magnesium alloy rolling. Appl Surf Sci 475:847–856CrossRef
70.
Zurück zum Zitat Ren BJ, Gao L, Xie BT, Li MJ, Zhang SD, Zu GQ, Ran X (2020) Tribological properties and anti-wear mechanism of ZnO@graphene core-shell nanoparticles as lubricant additives. Tribol Int 144:106114–104121CrossRef Ren BJ, Gao L, Xie BT, Li MJ, Zhang SD, Zu GQ, Ran X (2020) Tribological properties and anti-wear mechanism of ZnO@graphene core-shell nanoparticles as lubricant additives. Tribol Int 144:106114–104121CrossRef
71.
Zurück zum Zitat Ali I, Kucherova A, Memetov N (2019) Advances in carbon nanomaterials as lubricants modifiers. J Mol Liq 279:251–266CrossRef Ali I, Kucherova A, Memetov N (2019) Advances in carbon nanomaterials as lubricants modifiers. J Mol Liq 279:251–266CrossRef
72.
Zurück zum Zitat Zhai W, Srikanth N, Kong LB, Zhou K (2017) Carbon nanomaterials in tribology. Carbon 119:150–171CrossRef Zhai W, Srikanth N, Kong LB, Zhou K (2017) Carbon nanomaterials in tribology. Carbon 119:150–171CrossRef
73.
Zurück zum Zitat Song H, Wang Z, Yang J (2016) Tribological properties of graphene oxide and carbon spheres as lubricating additives. Appl Phys A 122(10):1–9CrossRef Song H, Wang Z, Yang J (2016) Tribological properties of graphene oxide and carbon spheres as lubricating additives. Appl Phys A 122(10):1–9CrossRef
74.
Zurück zum Zitat Tan SV, Shi HY, Fu LL, Ma J, Du X, Song J, Liu YH, Zeng QD et al (2020) Superlubricity of fullerene derivatives induced by host-guest assembly. ACS Appl Mater Inter 12(16):18924–18933CrossRef Tan SV, Shi HY, Fu LL, Ma J, Du X, Song J, Liu YH, Zeng QD et al (2020) Superlubricity of fullerene derivatives induced by host-guest assembly. ACS Appl Mater Inter 12(16):18924–18933CrossRef
75.
Zurück zum Zitat Liu C, Guo Y, Wang D (2019) PEI-RGO nanosheets as a nanoadditive for enhancing the tribological properties of water-based lubricants. Tribol Int 140:105851–105860CrossRef Liu C, Guo Y, Wang D (2019) PEI-RGO nanosheets as a nanoadditive for enhancing the tribological properties of water-based lubricants. Tribol Int 140:105851–105860CrossRef
76.
Zurück zum Zitat Raina A, Anand A (2017) Tribological investigation of diamond nanoparticles for steel/steel contacts in boundary lubrication regime. Appl Nanosci 7(7):371–388CrossRef Raina A, Anand A (2017) Tribological investigation of diamond nanoparticles for steel/steel contacts in boundary lubrication regime. Appl Nanosci 7(7):371–388CrossRef
77.
Zurück zum Zitat Peña-Parás L, Maldonado-Cortés D, García P (2017) Tribological performance of halloysite clay nanotubes as green lubricant additives. Wear 376:885–892CrossRef Peña-Parás L, Maldonado-Cortés D, García P (2017) Tribological performance of halloysite clay nanotubes as green lubricant additives. Wear 376:885–892CrossRef
79.
Zurück zum Zitat Das R, Bandyopadhyay R, Pramanik P (2018) Carbon quantum dots from natural resource: a review. Mater Today Chem 8:96–109CrossRef Das R, Bandyopadhyay R, Pramanik P (2018) Carbon quantum dots from natural resource: a review. Mater Today Chem 8:96–109CrossRef
80.
Zurück zum Zitat Wang R, Lu KQ, Tang ZR, Xu YJ (2017) Recent progress in carbon quantum dots: synthesis, properties and applications in photocatalysis. J Mater Chem A 5(8):3717–3734CrossRef Wang R, Lu KQ, Tang ZR, Xu YJ (2017) Recent progress in carbon quantum dots: synthesis, properties and applications in photocatalysis. J Mater Chem A 5(8):3717–3734CrossRef
81.
Zurück zum Zitat Huang SP, Li WS, Han P, Zhou X, Cheng JW, Wen HY, Xue WM (2019) Carbon quantum dots: synthesis, properties, and sensing applications as a potential clinical analytical method. Anal Methods 11(17):2240–2258CrossRef Huang SP, Li WS, Han P, Zhou X, Cheng JW, Wen HY, Xue WM (2019) Carbon quantum dots: synthesis, properties, and sensing applications as a potential clinical analytical method. Anal Methods 11(17):2240–2258CrossRef
82.
Zurück zum Zitat Xu XY, Ray R, Gu YL, Ploehn HJ, Gearheart L, Raker K, Scrivens WA (2004) Electrophoretic analysis and purification of fluorescent single-walled carbon nanotube fragments. J Am Chem Soc 126(40):12736–12737CrossRef Xu XY, Ray R, Gu YL, Ploehn HJ, Gearheart L, Raker K, Scrivens WA (2004) Electrophoretic analysis and purification of fluorescent single-walled carbon nanotube fragments. J Am Chem Soc 126(40):12736–12737CrossRef
83.
Zurück zum Zitat Sun YP, Zhou B, Lin Y, Wang W, Fernando KAS, Pathak P, Meziani MJ, Harruff BA et al (2006) Quantum-sized carbon dots for bright and colorful photoluminescence. J Am Chem Soc 128(24):7756–7757CrossRef Sun YP, Zhou B, Lin Y, Wang W, Fernando KAS, Pathak P, Meziani MJ, Harruff BA et al (2006) Quantum-sized carbon dots for bright and colorful photoluminescence. J Am Chem Soc 128(24):7756–7757CrossRef
84.
Zurück zum Zitat Wang Y, Hu A (2014) Carbon quantum dots: synthesis, properties and applications. J Mater Chem C 2(34):6921–6939CrossRef Wang Y, Hu A (2014) Carbon quantum dots: synthesis, properties and applications. J Mater Chem C 2(34):6921–6939CrossRef
85.
Zurück zum Zitat Liang QH, Ma WJ, Shi Y, Li Z, Yang XM (2013) Easy synthesis of highly fluorescent carbon quantum dots from gelatin and their luminescent properties and applications. Carbon 60:421–428CrossRef Liang QH, Ma WJ, Shi Y, Li Z, Yang XM (2013) Easy synthesis of highly fluorescent carbon quantum dots from gelatin and their luminescent properties and applications. Carbon 60:421–428CrossRef
86.
Zurück zum Zitat Alam AM, Park BY, Ghouri ZK, Park M, Kim HY (2015) Synthesis of carbon quantum dots from cabbage with down-and up-conversion photoluminescence properties: excellent imaging agent for biomedical applications. Green Chem 17(7):3791–3797CrossRef Alam AM, Park BY, Ghouri ZK, Park M, Kim HY (2015) Synthesis of carbon quantum dots from cabbage with down-and up-conversion photoluminescence properties: excellent imaging agent for biomedical applications. Green Chem 17(7):3791–3797CrossRef
87.
Zurück zum Zitat Mintz KJ, Zhou Y, Leblanc RM (2019) Recent development of carbon quantum dots regarding their optical properties, photoluminescence mechanism, and core structure. Nanoscale 11(11):4634–4652CrossRef Mintz KJ, Zhou Y, Leblanc RM (2019) Recent development of carbon quantum dots regarding their optical properties, photoluminescence mechanism, and core structure. Nanoscale 11(11):4634–4652CrossRef
88.
Zurück zum Zitat Zheng XT, Ananthanarayanan A, Luo KQ, Chen P (2015) Glowing graphene quantum dots and carbon dots: properties, syntheses, and biological applications. Small 11(14):1620–1636CrossRef Zheng XT, Ananthanarayanan A, Luo KQ, Chen P (2015) Glowing graphene quantum dots and carbon dots: properties, syntheses, and biological applications. Small 11(14):1620–1636CrossRef
89.
Zurück zum Zitat Molaei MJ (2020) The optical properties and solar energy conversion applications of carbon quantum dots: a review. Sol Energy 196:549–566CrossRef Molaei MJ (2020) The optical properties and solar energy conversion applications of carbon quantum dots: a review. Sol Energy 196:549–566CrossRef
90.
Zurück zum Zitat Lim SY, Shen W, Gao Z (2020) Carbon quantum dots and their applications. Chem Soc Rev 44(1):362–381CrossRef Lim SY, Shen W, Gao Z (2020) Carbon quantum dots and their applications. Chem Soc Rev 44(1):362–381CrossRef
91.
Zurück zum Zitat Molaei MJ (2019) A review on nanostructured carbon quantum dots and their applications in biotechnology, sensors, and chemiluminescence. Talanta 196:456–478CrossRef Molaei MJ (2019) A review on nanostructured carbon quantum dots and their applications in biotechnology, sensors, and chemiluminescence. Talanta 196:456–478CrossRef
92.
Zurück zum Zitat Yuan T, Meng T, He P, Shi YX, Li YC, Li XH, Fan LZ, Yang SH (2019) Carbon quantum dots: an emerging material for optoelectronic applications. J Mater Chem C 7(23):6820–6835CrossRef Yuan T, Meng T, He P, Shi YX, Li YC, Li XH, Fan LZ, Yang SH (2019) Carbon quantum dots: an emerging material for optoelectronic applications. J Mater Chem C 7(23):6820–6835CrossRef
93.
Zurück zum Zitat Zhao DL, Chung TS (2018) Applications of carbon quantum dots (CQDs) in membrane technologies: a review. Water Res 147:43–49CrossRef Zhao DL, Chung TS (2018) Applications of carbon quantum dots (CQDs) in membrane technologies: a review. Water Res 147:43–49CrossRef
94.
Zurück zum Zitat Tyagi A, Tripathi KM, Singh N, Choudhary S, Gupta RK (2016) Green synthesis of carbon quantum dots from lemon peel waste: applications in sensing and photocatalysis. RSC Adv 6(76):72423–72432CrossRef Tyagi A, Tripathi KM, Singh N, Choudhary S, Gupta RK (2016) Green synthesis of carbon quantum dots from lemon peel waste: applications in sensing and photocatalysis. RSC Adv 6(76):72423–72432CrossRef
95.
Zurück zum Zitat Molaei MJ (2019) Carbon quantum dots and their biomedical and therapeutic applications: a review. RSC Adv 9(12):6460–6481CrossRef Molaei MJ (2019) Carbon quantum dots and their biomedical and therapeutic applications: a review. RSC Adv 9(12):6460–6481CrossRef
96.
Zurück zum Zitat Devi P, Saini S, Kim KH (2019) The advanced role of carbon quantum dots in nanomedical applications. Biosens Bioelectron 141:111158–111174CrossRef Devi P, Saini S, Kim KH (2019) The advanced role of carbon quantum dots in nanomedical applications. Biosens Bioelectron 141:111158–111174CrossRef
97.
Zurück zum Zitat Kou XL, Jiang SC, Park SJ, Meng LY (2020) A review: recent advances in preparations and applications of heteroatom-doped carbon quantum dots. Dalton T 49(21):6915–6938CrossRef Kou XL, Jiang SC, Park SJ, Meng LY (2020) A review: recent advances in preparations and applications of heteroatom-doped carbon quantum dots. Dalton T 49(21):6915–6938CrossRef
98.
Zurück zum Zitat He P, Shi YX, Meng T, Yuan T, Li YC, Li XH, Zhang Y, Fan LZ et al (2020) Recent advances in white light-emitting diodes of carbon quantum dots. Nanoscale 12(8):4826–4832CrossRef He P, Shi YX, Meng T, Yuan T, Li YC, Li XH, Zhang Y, Fan LZ et al (2020) Recent advances in white light-emitting diodes of carbon quantum dots. Nanoscale 12(8):4826–4832CrossRef
99.
Zurück zum Zitat Walekar LS, Zheng MD, Zheng LH, Long MC (2019) Selenium and nitrogen co-doped carbon quantum dots as a fluorescent probe for perfluorooctanoic acid. Microchim Acta 186(5):1–9CrossRef Walekar LS, Zheng MD, Zheng LH, Long MC (2019) Selenium and nitrogen co-doped carbon quantum dots as a fluorescent probe for perfluorooctanoic acid. Microchim Acta 186(5):1–9CrossRef
100.
Zurück zum Zitat Xu L, Bai X, Guo LK, Yang SJ, Jin PK, Yang JL (2019) Facial fabrication of carbon quantum dots (CDs)-modified N-TiO2-x nanocomposite for the efficient photoreduction of Cr(VI) under visible light. Chem Eng J 357:473–486CrossRef Xu L, Bai X, Guo LK, Yang SJ, Jin PK, Yang JL (2019) Facial fabrication of carbon quantum dots (CDs)-modified N-TiO2-x nanocomposite for the efficient photoreduction of Cr(VI) under visible light. Chem Eng J 357:473–486CrossRef
101.
Zurück zum Zitat Yuan FL, Yuan T, Sui LZ, Wang ZB, Xi ZF, Li YC, Li XH, Fan LZ et al (2018) Engineering triangular carbon quantum dots with unprecedented narrow bandwidth emission for multicolored LEDs. Nat Commun 9(1):1–11CrossRef Yuan FL, Yuan T, Sui LZ, Wang ZB, Xi ZF, Li YC, Li XH, Fan LZ et al (2018) Engineering triangular carbon quantum dots with unprecedented narrow bandwidth emission for multicolored LEDs. Nat Commun 9(1):1–11CrossRef
102.
Zurück zum Zitat Li XY, Wang HQ, Shimizu Y, Pyatenko A, Kawaguchi K, Koshizaki N (2010) Preparation of carbon quantum dots with tunable photoluminescence by rapid laser passivation in ordinary organic solvents. Chem Commun 47(3):932–934CrossRef Li XY, Wang HQ, Shimizu Y, Pyatenko A, Kawaguchi K, Koshizaki N (2010) Preparation of carbon quantum dots with tunable photoluminescence by rapid laser passivation in ordinary organic solvents. Chem Commun 47(3):932–934CrossRef
103.
Zurück zum Zitat Wu MB, Wang Y, Wu WT, Hu C, Wang XN, Zheng JT, Li ZT, Jiang B et al (2014) Preparation of functionalized water-soluble photoluminescent carbon quantum dots from petroleum coke. Carbon 78:480–489CrossRef Wu MB, Wang Y, Wu WT, Hu C, Wang XN, Zheng JT, Li ZT, Jiang B et al (2014) Preparation of functionalized water-soluble photoluminescent carbon quantum dots from petroleum coke. Carbon 78:480–489CrossRef
104.
Zurück zum Zitat Hua XW, Bao YW, Wu FG (2018) Fluorescent carbon quantum dots with intrinsic nucleolus-targeting capability for nucleolus imaging and enhanced cytosolic and nuclear drug delivery. ACS Appl Mater Inter 10(13):10664–10677CrossRef Hua XW, Bao YW, Wu FG (2018) Fluorescent carbon quantum dots with intrinsic nucleolus-targeting capability for nucleolus imaging and enhanced cytosolic and nuclear drug delivery. ACS Appl Mater Inter 10(13):10664–10677CrossRef
105.
Zurück zum Zitat Mirtchev P, Henderson EJ, Soheilnia N, Yip CM, Ozin GA (2012) Solution phase synthesis of carbon quantum dots as sensitizers for nanocrystalline TiO2 solar cells. J Mater Chem 22(4):1265–1269CrossRef Mirtchev P, Henderson EJ, Soheilnia N, Yip CM, Ozin GA (2012) Solution phase synthesis of carbon quantum dots as sensitizers for nanocrystalline TiO2 solar cells. J Mater Chem 22(4):1265–1269CrossRef
106.
Zurück zum Zitat Luo T, Bu LL, Peng SY, Zhang YY, Zhou Z, Li GR, Huang J (2019) One-step microwave-assisted preparation of oxygen-rich multifunctional carbon quantum dots and their application for Cu2+-curcumin detection. Talanta 205:120117–120125CrossRef Luo T, Bu LL, Peng SY, Zhang YY, Zhou Z, Li GR, Huang J (2019) One-step microwave-assisted preparation of oxygen-rich multifunctional carbon quantum dots and their application for Cu2+-curcumin detection. Talanta 205:120117–120125CrossRef
107.
Zurück zum Zitat Wang T, Liu XQ, Ma CC, Zhu Z, Liu Y, Liu Z, Wei MB, Zhao XY et al (2018) Bamboo prepared carbon quantum dots (CQDs) for enhancing Bi3Ti4O12 nanosheets photocatalytic activity. J Alloy Compd 752:106–114CrossRef Wang T, Liu XQ, Ma CC, Zhu Z, Liu Y, Liu Z, Wei MB, Zhao XY et al (2018) Bamboo prepared carbon quantum dots (CQDs) for enhancing Bi3Ti4O12 nanosheets photocatalytic activity. J Alloy Compd 752:106–114CrossRef
108.
Zurück zum Zitat Hess SC, Permatasari FA, Fukazawa H, Schneider EM, Balgis R, Ogi T, Okuyama K, Stark WJ (2017) Direct synthesis of carbon quantum dots in aqueous polymer solution: one-pot reaction and preparation of transparent UV-blocking films. J Mater Chem A 5(10):5187–5194CrossRef Hess SC, Permatasari FA, Fukazawa H, Schneider EM, Balgis R, Ogi T, Okuyama K, Stark WJ (2017) Direct synthesis of carbon quantum dots in aqueous polymer solution: one-pot reaction and preparation of transparent UV-blocking films. J Mater Chem A 5(10):5187–5194CrossRef
109.
Zurück zum Zitat Ramar V, Moothattu S, Balasubramanian K (2018) Metal free, sunlight and white light based photocatalysis using carbon quantum dots from citrus grandis: a green way to remove pollution. Sol Energy 169:120–127CrossRef Ramar V, Moothattu S, Balasubramanian K (2018) Metal free, sunlight and white light based photocatalysis using carbon quantum dots from citrus grandis: a green way to remove pollution. Sol Energy 169:120–127CrossRef
110.
Zurück zum Zitat Bharathi D, Siddlingeshwar B, Krishna RH, Singh V, Kottam N, Divakar DD, Alkheraif AA (2018) Green and cost effective synthesis of fluorescent carbon quantum dots for dopamine detection. J Fluoresc 28(2):573–579CrossRef Bharathi D, Siddlingeshwar B, Krishna RH, Singh V, Kottam N, Divakar DD, Alkheraif AA (2018) Green and cost effective synthesis of fluorescent carbon quantum dots for dopamine detection. J Fluoresc 28(2):573–579CrossRef
111.
Zurück zum Zitat Farshbaf M, Davaran S, Rahimi F (2018) Carbon quantum dots: recent progresses on synthesis, surface modification and applications. Artif Cell Nanomed B 46(7):1331–1348CrossRef Farshbaf M, Davaran S, Rahimi F (2018) Carbon quantum dots: recent progresses on synthesis, surface modification and applications. Artif Cell Nanomed B 46(7):1331–1348CrossRef
112.
Zurück zum Zitat Ali MKA, Xian JH, Turkson RF, Peng Z, Chen XD (2016) Enhancing the thermophysical properties and tribological behaviour of engine oils using nano-lubricant additives. RSC Adv 6(81):77913–77924CrossRef Ali MKA, Xian JH, Turkson RF, Peng Z, Chen XD (2016) Enhancing the thermophysical properties and tribological behaviour of engine oils using nano-lubricant additives. RSC Adv 6(81):77913–77924CrossRef
113.
Zurück zum Zitat Lee K, Hwang Y, Cheong S, Choi Y, Kwon L, Lee J, Kim SH (2009) Understanding the role of nanoparticles in nano-oil lubrication. Tribol Lett 35(2):127–131CrossRef Lee K, Hwang Y, Cheong S, Choi Y, Kwon L, Lee J, Kim SH (2009) Understanding the role of nanoparticles in nano-oil lubrication. Tribol Lett 35(2):127–131CrossRef
114.
Zurück zum Zitat Gulzar M, Masjuki HH, Kalam MA, Varman M, Zulkifli NWM, Mufti RA, Zahid R (2016) Tribological performance of nanoparticles as lubricating oil additives. J Nanopart Res 18(8):1–25CrossRef Gulzar M, Masjuki HH, Kalam MA, Varman M, Zulkifli NWM, Mufti RA, Zahid R (2016) Tribological performance of nanoparticles as lubricating oil additives. J Nanopart Res 18(8):1–25CrossRef
115.
Zurück zum Zitat Ba ZW, Han YY, Qiao D, Feng DP, Huang GW (2018) Composite nanoparticles based on hydrotalcite as high performance lubricant additives. Ind Eng Chem Res 57(45):15225–15233 Ba ZW, Han YY, Qiao D, Feng DP, Huang GW (2018) Composite nanoparticles based on hydrotalcite as high performance lubricant additives. Ind Eng Chem Res 57(45):15225–15233
116.
Zurück zum Zitat Seymour BT, Wright RAE, Parrott AC, Gao HY, Martini A, Qu J, Dai S, Zhao B (2017) Poly (alkyl methacrylate) brush-grafted silica nanoparticles as oil lubricant additives: effects of alkyl pendant groups on oil dispersibility, stability, and lubrication property. ACS Appl Mater Inter 9(29):25038–25048CrossRef Seymour BT, Wright RAE, Parrott AC, Gao HY, Martini A, Qu J, Dai S, Zhao B (2017) Poly (alkyl methacrylate) brush-grafted silica nanoparticles as oil lubricant additives: effects of alkyl pendant groups on oil dispersibility, stability, and lubrication property. ACS Appl Mater Inter 9(29):25038–25048CrossRef
117.
Zurück zum Zitat Wang BG, Tang WW, Liu X, Huang ZY (2017) Synthesis of ionic liquid decorated multi-walled carbon nanotubes as the favorable water-based lubricant additives. Appl Phys A 123(11):1–11CrossRef Wang BG, Tang WW, Liu X, Huang ZY (2017) Synthesis of ionic liquid decorated multi-walled carbon nanotubes as the favorable water-based lubricant additives. Appl Phys A 123(11):1–11CrossRef
118.
Zurück zum Zitat Tang WW, Huang ZY, Wang BG (2018) Synthesis of ionic liquid functionalized grapheme oxides and their tribological property under water lubrication. Fuller Nanotub Car N 26(3):175–183CrossRef Tang WW, Huang ZY, Wang BG (2018) Synthesis of ionic liquid functionalized grapheme oxides and their tribological property under water lubrication. Fuller Nanotub Car N 26(3):175–183CrossRef
119.
Zurück zum Zitat Kotia A, Chowdary K, Srivastava I, Ghosh SK, AhmedAli MK (2020) Carbon nanomaterials as friction modifiers in automotive engines: recent progress and perspectives. J Mol Liq 310:113200–113212 Kotia A, Chowdary K, Srivastava I, Ghosh SK, AhmedAli MK (2020) Carbon nanomaterials as friction modifiers in automotive engines: recent progress and perspectives. J Mol Liq 310:113200–113212
120.
Zurück zum Zitat Song YB, Zhu SJ, Zhang ST, Fu Y, Wang L, Zhao XH, Yang B (2015) Investigation from chemical structure to photoluminescent mechanism: a type of carbon dots from the pyrolysis of citric acid and an amine. J Mater Chem C 3(23):5976–5984CrossRef Song YB, Zhu SJ, Zhang ST, Fu Y, Wang L, Zhao XH, Yang B (2015) Investigation from chemical structure to photoluminescent mechanism: a type of carbon dots from the pyrolysis of citric acid and an amine. J Mater Chem C 3(23):5976–5984CrossRef
121.
Zurück zum Zitat Zhu SJ, Meng QN, Wang L, Zhang JH, Song YB, Jin H, Zhang K, Sun HC et al (2013) Highly photoluminescent carbon dots for multicolor patterning, sensors, and bioimaging. Angew Chem 125(14):4045–4049CrossRef Zhu SJ, Meng QN, Wang L, Zhang JH, Song YB, Jin H, Zhang K, Sun HC et al (2013) Highly photoluminescent carbon dots for multicolor patterning, sensors, and bioimaging. Angew Chem 125(14):4045–4049CrossRef
122.
Zurück zum Zitat Hinterberger V, Damm C, Haines P, Guldi DM, Peukert W (2019) Purification and structural elucidation of carbon dots by column chromatography. Nanoscale 11(17):8464–8474CrossRef Hinterberger V, Damm C, Haines P, Guldi DM, Peukert W (2019) Purification and structural elucidation of carbon dots by column chromatography. Nanoscale 11(17):8464–8474CrossRef
123.
Zurück zum Zitat Wang BG, Liang Z, Tan H, Duan WM, Luo MN (2020) Red-emission carbon dots-quercetin systems as ratiometric fluorescent nanoprobes towards Zn2+ and adenosine triphosphate. Microchim Acta 187:1–9 Wang BG, Liang Z, Tan H, Duan WM, Luo MN (2020) Red-emission carbon dots-quercetin systems as ratiometric fluorescent nanoprobes towards Zn2+ and adenosine triphosphate. Microchim Acta 187:1–9
124.
Zurück zum Zitat Wang BG, Zhao B (2019) Carbon dots/CoFe2O4 mesoporous nanosphere composites as a magnetically separable visible light photocatalyst. Russ J Phys Chem A 93(2):393–399CrossRef Wang BG, Zhao B (2019) Carbon dots/CoFe2O4 mesoporous nanosphere composites as a magnetically separable visible light photocatalyst. Russ J Phys Chem A 93(2):393–399CrossRef
125.
Zurück zum Zitat Chen BB, Liu ML, Li CM, Huang CZ (2019) Fluorescent carbon dots functionalization. Adv Colloid Interface Sci 270:165–190CrossRef Chen BB, Liu ML, Li CM, Huang CZ (2019) Fluorescent carbon dots functionalization. Adv Colloid Interface Sci 270:165–190CrossRef
126.
Zurück zum Zitat Liu X, Huang ZY, Tang WW, Wang BG (2017) Remarkable lubricating effect of ionic liquid modified carbon dots as a kind of water-based lubricant additives. NANO 12(09):1750108–1750119CrossRef Liu X, Huang ZY, Tang WW, Wang BG (2017) Remarkable lubricating effect of ionic liquid modified carbon dots as a kind of water-based lubricant additives. NANO 12(09):1750108–1750119CrossRef
127.
Zurück zum Zitat Liu X, Chen Y (2019) Synthesis of polyethylene glycol modified carbon dots as a kind of excellent water-based lubricant additives. Fuller Nanotub Car N 27(5):400–409CrossRef Liu X, Chen Y (2019) Synthesis of polyethylene glycol modified carbon dots as a kind of excellent water-based lubricant additives. Fuller Nanotub Car N 27(5):400–409CrossRef
128.
Zurück zum Zitat Mou ZH, Wang BG, Lu HS, Dai SS, Huang ZY (2019) Synthesis of poly (ionic liquid)s brush-grafted carbon dots for high-performance lubricant additives of polyethylene glycol. Carbon 154:301–312CrossRef Mou ZH, Wang BG, Lu HS, Dai SS, Huang ZY (2019) Synthesis of poly (ionic liquid)s brush-grafted carbon dots for high-performance lubricant additives of polyethylene glycol. Carbon 154:301–312CrossRef
129.
Zurück zum Zitat Ye MT, Cai T, Zhao LN, Liu D, Liu SG (2019) Covalently attached strategy to modulate surface of carbon quantum dots: Towards effectively multifunctional lubricant additives in polar and apolar base fluids. Tribol Int 136:349–359CrossRef Ye MT, Cai T, Zhao LN, Liu D, Liu SG (2019) Covalently attached strategy to modulate surface of carbon quantum dots: Towards effectively multifunctional lubricant additives in polar and apolar base fluids. Tribol Int 136:349–359CrossRef
130.
Zurück zum Zitat Yahaya PM, Zainal AZ, Abdul RS (2020) Eco-friendly sustainable fluorescent carbon dots for the adsorption of heavy metal ions in aqueous environment. Nanomaterials 10(2):315–333CrossRef Yahaya PM, Zainal AZ, Abdul RS (2020) Eco-friendly sustainable fluorescent carbon dots for the adsorption of heavy metal ions in aqueous environment. Nanomaterials 10(2):315–333CrossRef
132.
Zurück zum Zitat Fan K, Liu XK, Liu Y, Li Y, Chen Y, Meng YQ, Liu XY, Feng W et al (2020) Covalent functionalization of fluorinated graphene through activation of dormant radicals for water-based lubricants. Carbon 167:826–834CrossRef Fan K, Liu XK, Liu Y, Li Y, Chen Y, Meng YQ, Liu XY, Feng W et al (2020) Covalent functionalization of fluorinated graphene through activation of dormant radicals for water-based lubricants. Carbon 167:826–834CrossRef
133.
Zurück zum Zitat Ye XY, Ma LM, Yang ZG, Wang JQ, Wang HG, Yang SR (2016) Covalent functionalization of fluorinated graphene and subsequent application as water-based lubricant additive. ACS Appl Mater Inter 8(11):7483–7488CrossRef Ye XY, Ma LM, Yang ZG, Wang JQ, Wang HG, Yang SR (2016) Covalent functionalization of fluorinated graphene and subsequent application as water-based lubricant additive. ACS Appl Mater Inter 8(11):7483–7488CrossRef
134.
Zurück zum Zitat Xiao HP, Liu SH, Xu Q, Zhang H (2019) Carbon quantum dots: an innovative additive for water lubrication. Sci China Tech Sci 62(4):587–596CrossRef Xiao HP, Liu SH, Xu Q, Zhang H (2019) Carbon quantum dots: an innovative additive for water lubrication. Sci China Tech Sci 62(4):587–596CrossRef
135.
Zurück zum Zitat Tang JZ, Chen SQ, Jia YL, Ma Y, Xie HM, Quan X, Ding Q (2020) Carbon dots as an additive for improving performance in water-based lubricants for amorphous carbon (a-C) coatings. Carbon 156:272–281CrossRef Tang JZ, Chen SQ, Jia YL, Ma Y, Xie HM, Quan X, Ding Q (2020) Carbon dots as an additive for improving performance in water-based lubricants for amorphous carbon (a-C) coatings. Carbon 156:272–281CrossRef
136.
Zurück zum Zitat Qiang RB, Hu LF, Hou KM, Wang JQ, Yang SR (2019) Water-soluble graphene quantum dots as high-performance water-based lubricant additive for steel/steel contact. Tribol Lett 67(2):1–9CrossRef Qiang RB, Hu LF, Hou KM, Wang JQ, Yang SR (2019) Water-soluble graphene quantum dots as high-performance water-based lubricant additive for steel/steel contact. Tribol Lett 67(2):1–9CrossRef
137.
Zurück zum Zitat Hu YW, Wang YX, Wang CT, Ye YW, Zhao HC, Li JL, Lu XJ, Mao CL et al (2019) One-pot pyrolysis preparation of carbon dots as eco-friendly nanoadditives of water-based lubricants. Carbon 152:511–520CrossRef Hu YW, Wang YX, Wang CT, Ye YW, Zhao HC, Li JL, Lu XJ, Mao CL et al (2019) One-pot pyrolysis preparation of carbon dots as eco-friendly nanoadditives of water-based lubricants. Carbon 152:511–520CrossRef
138.
Zurück zum Zitat Zheng GL, Ding TM, Huang YX, Zheng L, Ren TH (2018) Fatty acid based phosphite ionic liquids as multifunctional lubricant additives in mineral oil and refined vegetable oil. Tribol Int 123:316–324CrossRef Zheng GL, Ding TM, Huang YX, Zheng L, Ren TH (2018) Fatty acid based phosphite ionic liquids as multifunctional lubricant additives in mineral oil and refined vegetable oil. Tribol Int 123:316–324CrossRef
139.
Zurück zum Zitat Yang CZ, Hou X, Li ZW, Li XH, Yu LG, Zhang ZJ (2016) Preparation of surface-modified lanthanum fluoride-graphene oxide nanohybrids and evaluation of their tribological properties as lubricant additive in liquid paraffin. Appl Surf Sci 388:497–502CrossRef Yang CZ, Hou X, Li ZW, Li XH, Yu LG, Zhang ZJ (2016) Preparation of surface-modified lanthanum fluoride-graphene oxide nanohybrids and evaluation of their tribological properties as lubricant additive in liquid paraffin. Appl Surf Sci 388:497–502CrossRef
140.
Zurück zum Zitat Gusain R, Khan A, Khatri OP (2020) Fatty acid-derived ionic liquids as renewable lubricant additives: effect of chain length and unsaturation. J Mol Liq 301:112322–112330CrossRef Gusain R, Khan A, Khatri OP (2020) Fatty acid-derived ionic liquids as renewable lubricant additives: effect of chain length and unsaturation. J Mol Liq 301:112322–112330CrossRef
141.
Zurück zum Zitat He C, Yan HH, Wang XH, Bai ML (2018) Graphene quantum dots prepared by gaseous detonation toward excellent friction-reducing and anti-wear additives. Diam Relat Mater 89:293–300CrossRef He C, Yan HH, Wang XH, Bai ML (2018) Graphene quantum dots prepared by gaseous detonation toward excellent friction-reducing and anti-wear additives. Diam Relat Mater 89:293–300CrossRef
142.
Zurück zum Zitat Huang H, Hu HL, Qiao S, Bai L, Han MM, Liu Y, Kang ZH (2015) Carbon quantum dot/CuSx nanocomposites towards highly efficient lubrication and metal wear repair. Nanoscale 7(26):11321–11327CrossRef Huang H, Hu HL, Qiao S, Bai L, Han MM, Liu Y, Kang ZH (2015) Carbon quantum dot/CuSx nanocomposites towards highly efficient lubrication and metal wear repair. Nanoscale 7(26):11321–11327CrossRef
143.
Zurück zum Zitat Latza VM, Rodriguez-Loureiro I, Fragneto G, Schneck E (2018) End point versus backbone specificity governs characteristics of antibody binding to poly (ethylene glycol) brushes. Langmuir 34(46):13946–13955CrossRef Latza VM, Rodriguez-Loureiro I, Fragneto G, Schneck E (2018) End point versus backbone specificity governs characteristics of antibody binding to poly (ethylene glycol) brushes. Langmuir 34(46):13946–13955CrossRef
144.
Zurück zum Zitat Hamta A, Dehghani MR (2017) Application of polyethylene glycol based aqueous two-phase systems for extraction of heavy metals. J Mol Liq 231:20–24CrossRef Hamta A, Dehghani MR (2017) Application of polyethylene glycol based aqueous two-phase systems for extraction of heavy metals. J Mol Liq 231:20–24CrossRef
145.
Zurück zum Zitat Cai MR, Liang YM, Zhou F, Liu WM (2011) Tribological properties of novel imidazolium ionic liquids bearing benzotriazole group as the anti-wear/anticorrosion additive in poly (ethylene glycol) and polyurea grease for steel/steel contacts. ACS Appl Mater Inter 3(12):4580–4592CrossRef Cai MR, Liang YM, Zhou F, Liu WM (2011) Tribological properties of novel imidazolium ionic liquids bearing benzotriazole group as the anti-wear/anticorrosion additive in poly (ethylene glycol) and polyurea grease for steel/steel contacts. ACS Appl Mater Inter 3(12):4580–4592CrossRef
146.
Zurück zum Zitat Ge XY, Li JJ, Zhang CH, Luo JB (2018) Liquid superlubricity of polyethylene glycol aqueous solution achieved with boric acid additive. Langmuir 34(12):3578–3587CrossRef Ge XY, Li JJ, Zhang CH, Luo JB (2018) Liquid superlubricity of polyethylene glycol aqueous solution achieved with boric acid additive. Langmuir 34(12):3578–3587CrossRef
147.
Zurück zum Zitat Guo H, Iglesias P (2020) Tribological behavior of ammonium-based protic ionic liquid as lubricant additive. Friction 9(1):169–178CrossRef Guo H, Iglesias P (2020) Tribological behavior of ammonium-based protic ionic liquid as lubricant additive. Friction 9(1):169–178CrossRef
148.
Zurück zum Zitat Gusain R, Mungse HP, Kumar N, Ravindran TR, Pandian R, Sugimura H, Khatri OP (2016) Covalently attached graphene-ionic liquid hybrid nanomaterials: synthesis, characterization and tribological application. J Mater Chem A 4(3):926–937CrossRef Gusain R, Mungse HP, Kumar N, Ravindran TR, Pandian R, Sugimura H, Khatri OP (2016) Covalently attached graphene-ionic liquid hybrid nanomaterials: synthesis, characterization and tribological application. J Mater Chem A 4(3):926–937CrossRef
149.
Zurück zum Zitat Wen P, Lei YZ, Li WQ, Fan MJ (2020) Two-dimension layered nanomaterial as lubricant additives: covalent organic frameworks beyond oxide graphene and reduced oxide graphene. Tribol Int 143:106051–106059CrossRef Wen P, Lei YZ, Li WQ, Fan MJ (2020) Two-dimension layered nanomaterial as lubricant additives: covalent organic frameworks beyond oxide graphene and reduced oxide graphene. Tribol Int 143:106051–106059CrossRef
150.
Zurück zum Zitat Wang BG, Tang WW, Lu HS, Huang ZY (2016) Ionic liquid capped carbon dots as a high-performance friction-reducing and anti-wear additive for poly (ethylene glycol). J Mater Chem A 4(19):7257–7265CrossRef Wang BG, Tang WW, Lu HS, Huang ZY (2016) Ionic liquid capped carbon dots as a high-performance friction-reducing and anti-wear additive for poly (ethylene glycol). J Mater Chem A 4(19):7257–7265CrossRef
151.
Zurück zum Zitat Zhang YX, Cai T, Shang WJ, Liu D, Guo Q, Liu SG (2017) Facile synthesis of photoluminescent inorganic-organic hybrid carbon dots co-doped with B and N: towards an efficient lubrication additive. Dalton T 6(36):12306–12312CrossRef Zhang YX, Cai T, Shang WJ, Liu D, Guo Q, Liu SG (2017) Facile synthesis of photoluminescent inorganic-organic hybrid carbon dots co-doped with B and N: towards an efficient lubrication additive. Dalton T 6(36):12306–12312CrossRef
152.
Zurück zum Zitat Zhao LN, Cai T, Ye MT, Liu D, Liu SG (2019) The regulation of the microstructure, luminescence and lubricity of multi-element doped carbon nanodots with alkylated diquaternary 1, 4-Diazabicyclo [2.2.2] octane derived dicationic ionic liquids inserted in carbon skeleton. Carbon 150:319–333CrossRef Zhao LN, Cai T, Ye MT, Liu D, Liu SG (2019) The regulation of the microstructure, luminescence and lubricity of multi-element doped carbon nanodots with alkylated diquaternary 1, 4-Diazabicyclo [2.2.2] octane derived dicationic ionic liquids inserted in carbon skeleton. Carbon 150:319–333CrossRef
153.
Zurück zum Zitat Shang WJ, Cai T, Zhang YX, Liu D, Sun LW, Su XY, Liu SG (2018) Covalent grafting of chelated othoborate ionic liquid on carbon quantum dot towards high performance additives: Synthesis, characterization and tribological evaluation. Tribol Int 121:302–309CrossRef Shang WJ, Cai T, Zhang YX, Liu D, Sun LW, Su XY, Liu SG (2018) Covalent grafting of chelated othoborate ionic liquid on carbon quantum dot towards high performance additives: Synthesis, characterization and tribological evaluation. Tribol Int 121:302–309CrossRef
154.
Zurück zum Zitat Shang WJ, Ye MT, Cai T, Zhao LN, Zhang YX, Liu D, Liu SG (2018) Tuning of the hydrophilicity and hydrophobicity of nitrogen doped carbon dots: a facile approach towards high efficient lubricant nanoadditives. J Mol Liq 266:65–74CrossRef Shang WJ, Ye MT, Cai T, Zhao LN, Zhang YX, Liu D, Liu SG (2018) Tuning of the hydrophilicity and hydrophobicity of nitrogen doped carbon dots: a facile approach towards high efficient lubricant nanoadditives. J Mol Liq 266:65–74CrossRef
155.
Zurück zum Zitat Shang WJ, Cai T, Zhang YX, Liu D, Liu SG (2018) Facile one pot pyrolysis synthesis of carbon quantum dots and graphene oxide nanomaterials: all carbon hybrids as eco-environmental lubricants for low friction and remarkable wear-resistance. Tribol Int 118:373–380CrossRef Shang WJ, Cai T, Zhang YX, Liu D, Liu SG (2018) Facile one pot pyrolysis synthesis of carbon quantum dots and graphene oxide nanomaterials: all carbon hybrids as eco-environmental lubricants for low friction and remarkable wear-resistance. Tribol Int 118:373–380CrossRef
156.
Zurück zum Zitat Ye MT, Cai T, Shang WJ, Zhao LN, Zhang YX, Liu D, Liu SG (2018) Friction-induced transfer of carbon quantum dots on the interface: Microscopic and spectroscopic studies on the role of inorganic-organic hybrid nanoparticles as multifunctional additive for enhanced lubrication. Tribol Int 127:557–567CrossRef Ye MT, Cai T, Shang WJ, Zhao LN, Zhang YX, Liu D, Liu SG (2018) Friction-induced transfer of carbon quantum dots on the interface: Microscopic and spectroscopic studies on the role of inorganic-organic hybrid nanoparticles as multifunctional additive for enhanced lubrication. Tribol Int 127:557–567CrossRef
157.
Zurück zum Zitat He C, Yan HH, Li XJ, Wang XH (2019) One-pot millisecond preparation of quench-resistant solid-state fluorescence carbon dots toward an efficient lubrication additive. Diam Relat Mater 91:255–260CrossRef He C, Yan HH, Li XJ, Wang XH (2019) One-pot millisecond preparation of quench-resistant solid-state fluorescence carbon dots toward an efficient lubrication additive. Diam Relat Mater 91:255–260CrossRef
158.
Zurück zum Zitat Tu ZQ, Hu EZ, Wang BB, David KD, Seeger P, Moneke M, Stengler R, Hu KH et al (2020) Tribological behaviors of Ni-modified citric acid carbon quantum dot particles as a green additive in polyethylene glycol. Friction 8(1):182–197CrossRef Tu ZQ, Hu EZ, Wang BB, David KD, Seeger P, Moneke M, Stengler R, Hu KH et al (2020) Tribological behaviors of Ni-modified citric acid carbon quantum dot particles as a green additive in polyethylene glycol. Friction 8(1):182–197CrossRef
159.
Zurück zum Zitat Cai T, Zhang YX, Liu D, Tong DY, Liu SG (2019) Nanostructured molybdenum/heteroatom-doped carbon dots nanohybrids for lubrication by direct carbonization route. Mater Lett 250:20–24CrossRef Cai T, Zhang YX, Liu D, Tong DY, Liu SG (2019) Nanostructured molybdenum/heteroatom-doped carbon dots nanohybrids for lubrication by direct carbonization route. Mater Lett 250:20–24CrossRef
160.
Zurück zum Zitat Mou ZH, Wang BG, Lu HS, Quan HP, Huang ZY (2019) Branched polyelectrolyte grafted carbon dots as the high-performance friction-reducing and anti-wear additives of polyethylene glycol. Carbon 149:594–603CrossRef Mou ZH, Wang BG, Lu HS, Quan HP, Huang ZY (2019) Branched polyelectrolyte grafted carbon dots as the high-performance friction-reducing and anti-wear additives of polyethylene glycol. Carbon 149:594–603CrossRef
161.
Zurück zum Zitat Mou ZH, Wang BG, Huang ZY, Lu HS (2020) Ultrahigh yield synthesis of mesoporous carbon nanoparticles as a superior lubricant additive for polyethylene glycol. Dalton T 49(16):5283–5290CrossRef Mou ZH, Wang BG, Huang ZY, Lu HS (2020) Ultrahigh yield synthesis of mesoporous carbon nanoparticles as a superior lubricant additive for polyethylene glycol. Dalton T 49(16):5283–5290CrossRef
162.
Zurück zum Zitat He C, Yan HH, Li XJ, Wang XH (2019) In situ fabrication of carbon dots-based lubricants using a facile ultrasonic approach. Green Chem 21(9):2279–2285CrossRef He C, Yan HH, Li XJ, Wang XH (2019) In situ fabrication of carbon dots-based lubricants using a facile ultrasonic approach. Green Chem 21(9):2279–2285CrossRef
163.
Zurück zum Zitat Yang GB, Zhang JF, Zhang SM, Yu LG, Zhang PY, Zhu BL (2013) Preparation of triazine derivatives and evaluation of their tribological properties as lubricant additives in poly-alpha olefin. Tribol Int 62:163–170CrossRef Yang GB, Zhang JF, Zhang SM, Yu LG, Zhang PY, Zhu BL (2013) Preparation of triazine derivatives and evaluation of their tribological properties as lubricant additives in poly-alpha olefin. Tribol Int 62:163–170CrossRef
164.
Zurück zum Zitat Dolatabadi N, Rahmani R, Rahnejat H, Garner CP, Brunton C (2020) Performance of poly alpha olefin nanolubricant. Lubricants 8(2):17–34CrossRef Dolatabadi N, Rahmani R, Rahnejat H, Garner CP, Brunton C (2020) Performance of poly alpha olefin nanolubricant. Lubricants 8(2):17–34CrossRef
165.
Zurück zum Zitat Tang GB, Su FH, Xu X, Chu PK (2020) 2D black phosphorus dotted with silver nanoparticles: an excellent lubricant additive for tribological applications. Chem Eng J 392:123631–123641CrossRef Tang GB, Su FH, Xu X, Chu PK (2020) 2D black phosphorus dotted with silver nanoparticles: an excellent lubricant additive for tribological applications. Chem Eng J 392:123631–123641CrossRef
166.
Zurück zum Zitat Cao ZF, Xia YQ, Chen C (2018) Fabrication of novel ionic liquids-doped polyaniline as lubricant additive for anti-corrosion and tribological properties. Tribol Int 120:446–454CrossRef Cao ZF, Xia YQ, Chen C (2018) Fabrication of novel ionic liquids-doped polyaniline as lubricant additive for anti-corrosion and tribological properties. Tribol Int 120:446–454CrossRef
168.
Zurück zum Zitat Zhang YX, Cai T, Shang WJ, Sun LW, Liu D, Tong DY, Liu SG (2017) Environmental friendly polyisobutylene-based ionic liquid containing chelated orthoborate as lubricant additive: synthesis, tribological properties and synergistic interactions with ZDDP in hydrocarbon oils. Tribol Int 115:297–306CrossRef Zhang YX, Cai T, Shang WJ, Sun LW, Liu D, Tong DY, Liu SG (2017) Environmental friendly polyisobutylene-based ionic liquid containing chelated orthoborate as lubricant additive: synthesis, tribological properties and synergistic interactions with ZDDP in hydrocarbon oils. Tribol Int 115:297–306CrossRef
169.
Zurück zum Zitat Kawada S, Watanabe S, Tadokoro C, Tsuboi R, Sasaki S (2018) Lubricating mechanism of cyano-based ionic liquids on nascent steel surface. Tribol Int 119:474–480CrossRef Kawada S, Watanabe S, Tadokoro C, Tsuboi R, Sasaki S (2018) Lubricating mechanism of cyano-based ionic liquids on nascent steel surface. Tribol Int 119:474–480CrossRef
170.
Zurück zum Zitat Yu QL, Zhang CY, Wang JB, Fan FQ, Yang ZQ, Zhou XG, Tang ZP, Cai MR, et al (2020) Tribological performance and lubrication mechanism of new gemini quaternary phosphonium ionic liquid lubricants. J Mol Liq 322:114522–114529 Yu QL, Zhang CY, Wang JB, Fan FQ, Yang ZQ, Zhou XG, Tang ZP, Cai MR, et al (2020) Tribological performance and lubrication mechanism of new gemini quaternary phosphonium ionic liquid lubricants. J Mol Liq 322:114522–114529
171.
Zurück zum Zitat Dong R, Bao LY, Yu QL, Wu Y, Ma ZF, Zhang JY, Cai MR, Zhou F et al (2020) Effect of electric potential and chain length on tribological performances of ionic liquids as additives for aqueous systems and molecular dynamics simulations. ACS Appl Mater Inter 12(35):39910–39919CrossRef Dong R, Bao LY, Yu QL, Wu Y, Ma ZF, Zhang JY, Cai MR, Zhou F et al (2020) Effect of electric potential and chain length on tribological performances of ionic liquids as additives for aqueous systems and molecular dynamics simulations. ACS Appl Mater Inter 12(35):39910–39919CrossRef
172.
Zurück zum Zitat Bancroft GM, Kasrai M, Fuller M, Yin Z, Fyfe K, Tan KH (1997) Mechanisms of tribochemical film formation: stability of tribo-and thermally-generated ZDDP films. Tribol Lett 3(1):47–51CrossRef Bancroft GM, Kasrai M, Fuller M, Yin Z, Fyfe K, Tan KH (1997) Mechanisms of tribochemical film formation: stability of tribo-and thermally-generated ZDDP films. Tribol Lett 3(1):47–51CrossRef
173.
Zurück zum Zitat Heuberger R, Rossi A, Spencer ND (2007) Pressure dependence of ZnDTP tribochemical film formation: a combinatorial approach. Tribol Lett 28(2):209–222CrossRef Heuberger R, Rossi A, Spencer ND (2007) Pressure dependence of ZnDTP tribochemical film formation: a combinatorial approach. Tribol Lett 28(2):209–222CrossRef
174.
Zurück zum Zitat Gosvami NN, Ma J, Carpick RW (2018) An in situ method for simultaneous friction measurements and imaging of interfacial tribochemical film growth in lubricated contacts. Tribol Lett 66(4):1–10CrossRef Gosvami NN, Ma J, Carpick RW (2018) An in situ method for simultaneous friction measurements and imaging of interfacial tribochemical film growth in lubricated contacts. Tribol Lett 66(4):1–10CrossRef
175.
Zurück zum Zitat Zhang SM, Zhang CH, Chen XC, Li K, Jiang JM, Yuan CQ, Luo JB (2019) XPS and ToF-SIMS analysis of the tribochemical absorbed films on steel surfaces lubricated with diketone. Tribol Int 130:184–190CrossRef Zhang SM, Zhang CH, Chen XC, Li K, Jiang JM, Yuan CQ, Luo JB (2019) XPS and ToF-SIMS analysis of the tribochemical absorbed films on steel surfaces lubricated with diketone. Tribol Int 130:184–190CrossRef
176.
Zurück zum Zitat Xie HM, Jiang B, He JJ, Xia XS, Pan FS (2016) Lubrication performance of MoS2 and SiO2 nanoparticles as lubricant additives in magnesium alloy-steel contacts. Tribol Int 93:63–70CrossRef Xie HM, Jiang B, He JJ, Xia XS, Pan FS (2016) Lubrication performance of MoS2 and SiO2 nanoparticles as lubricant additives in magnesium alloy-steel contacts. Tribol Int 93:63–70CrossRef
177.
Zurück zum Zitat Wu XH, Gong KL, Zhao GQ, Lou WJ, Wang XB, Liu WM (2018) MoS2/WS2 quantum dots as high-performance lubricant additive in polyalkylene glycol for steel/steel contact at elevated temperature. Adv Mater Inter 5(1):1700859–1700868CrossRef Wu XH, Gong KL, Zhao GQ, Lou WJ, Wang XB, Liu WM (2018) MoS2/WS2 quantum dots as high-performance lubricant additive in polyalkylene glycol for steel/steel contact at elevated temperature. Adv Mater Inter 5(1):1700859–1700868CrossRef
178.
Zurück zum Zitat Shahnazar S, Bagheri S, Abd HSB (2016) Enhancing lubricant properties by nanoparticle additives. Int J Hydrog Energy 41(4):3153–3170CrossRef Shahnazar S, Bagheri S, Abd HSB (2016) Enhancing lubricant properties by nanoparticle additives. Int J Hydrog Energy 41(4):3153–3170CrossRef
179.
Zurück zum Zitat Cui YX, Ding M, Sui TY, Zheng W, Qiao GC, Yan S, Liu XB (2020) Role of nanoparticle materials as water-based lubricant additives for ceramics. Tribol Int 142:105978–105984CrossRef Cui YX, Ding M, Sui TY, Zheng W, Qiao GC, Yan S, Liu XB (2020) Role of nanoparticle materials as water-based lubricant additives for ceramics. Tribol Int 142:105978–105984CrossRef
180.
Zurück zum Zitat Wu LL, Lei X, Zhang YJ, Zhang SM, Yang GB, Zhang PY (2020) The tribological mechanism of cerium oxide nanoparticles as lubricant additive of poly-alpha olefin. Tribol Lett 68(4):1–12CrossRef Wu LL, Lei X, Zhang YJ, Zhang SM, Yang GB, Zhang PY (2020) The tribological mechanism of cerium oxide nanoparticles as lubricant additive of poly-alpha olefin. Tribol Lett 68(4):1–12CrossRef
181.
Zurück zum Zitat Mou Z, Wang BG, Huang ZY (2019) Branched polyethyleneimine modified carbon nanoparticles as the effective additives of water lubrication. Fuller Nanotub Car N 27(12):899–906CrossRef Mou Z, Wang BG, Huang ZY (2019) Branched polyethyleneimine modified carbon nanoparticles as the effective additives of water lubrication. Fuller Nanotub Car N 27(12):899–906CrossRef
182.
Zurück zum Zitat Lu H, Ren S, Zhang P (2017) Laser-textured surface storing a carbon dots/poly (ethylene glycol)/chitosan gel with slow-release lubrication effect. RSC Adv 7(35):21600–21606CrossRef Lu H, Ren S, Zhang P (2017) Laser-textured surface storing a carbon dots/poly (ethylene glycol)/chitosan gel with slow-release lubrication effect. RSC Adv 7(35):21600–21606CrossRef
183.
Zurück zum Zitat Zhang RH, Xiong LP, Pu JB, Lu ZB, Zhang GG, He ZY (2019) Interface-sliding-induced graphene quantum dots transferring to fullerene-like quantum dots and their extraordinary tribological behavior. Adv Mater Interface 6(24):1901386–1901399CrossRef Zhang RH, Xiong LP, Pu JB, Lu ZB, Zhang GG, He ZY (2019) Interface-sliding-induced graphene quantum dots transferring to fullerene-like quantum dots and their extraordinary tribological behavior. Adv Mater Interface 6(24):1901386–1901399CrossRef
184.
Zurück zum Zitat Kerni L, Raina A, Haq MIU (2019) Friction and wear performance of olive oil containing nanoparticles in boundary and mixed lubrication regimes. Wear 426:819–827CrossRef Kerni L, Raina A, Haq MIU (2019) Friction and wear performance of olive oil containing nanoparticles in boundary and mixed lubrication regimes. Wear 426:819–827CrossRef
185.
Zurück zum Zitat Sarno M, Mustafa WAA, Senatore A, Scarpa D (2020) One-step “green” synthesis of dispersable carbon quantum dots/poly (methyl methacrylate) nanocomposites for tribological applications. Tribol Int 148:106311–106321CrossRef Sarno M, Mustafa WAA, Senatore A, Scarpa D (2020) One-step “green” synthesis of dispersable carbon quantum dots/poly (methyl methacrylate) nanocomposites for tribological applications. Tribol Int 148:106311–106321CrossRef
186.
Zurück zum Zitat Tang WW, Jiang ZQ, Wang BG, Li YF (2020) Black phosphorus quantum dots: A new-type of water-based high-efficiency lubricant additive. Friction 8:1−15 Tang WW, Jiang ZQ, Wang BG, Li YF (2020) Black phosphorus quantum dots: A new-type of water-based high-efficiency lubricant additive. Friction 8:1−15
Metadaten
Titel
Applications of carbon quantum dots in lubricant additives: a review
verfasst von
Weiwei Tang
Zhe Zhang
Yufeng Li
Publikationsdatum
27.04.2021
Verlag
Springer US
Erschienen in
Journal of Materials Science / Ausgabe 21/2021
Print ISSN: 0022-2461
Elektronische ISSN: 1573-4803
DOI
https://doi.org/10.1007/s10853-021-06032-8

Weitere Artikel der Ausgabe 21/2021

Journal of Materials Science 21/2021 Zur Ausgabe

    Marktübersichten

    Die im Laufe eines Jahres in der „adhäsion“ veröffentlichten Marktübersichten helfen Anwendern verschiedenster Branchen, sich einen gezielten Überblick über Lieferantenangebote zu verschaffen.