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Published in: Journal of Materials Science 19/2018

25-06-2018 | Chemical routes to materials

Low-temperature treatment for preservation and separation of graphene dispersions

Authors: Lei Liu, Zhigang Shen, Xiaojing Zhang, Shulin Ma

Published in: Journal of Materials Science | Issue 19/2018

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Abstract

Graphene nanosheets prepared by liquid-phase exfoliation tend to aggregate easily and irreversibly in most solvents due to van der Waals forces and high surface energy. This article presents a facile, low-cost and novel approach for the preservation and separation of graphene dispersions by adjusting the temperature and solvent. Using IPA-water mixtures can realize green production of graphene nanosheets, and different physicochemical parameters are achievable by changing the proportion of components. Two valid methods for improving stability were discussed in depth: low-temperature storage as a liquid and as a solid. When graphene dispersions are stored in a liquid phase, agglomeration of nanosheets in mixed solvents can be effectively retarded by strong viscous resistance induced by low temperatures. Frozen powder prepared by liquid nitrogen maintains the nanosheets in a dispersed state and is suitable for long-term preservation in the solid phase in ordinary freezers. Furthermore, rapid separation of graphene nanosheets is a challenging problem that retards industrial production. Flocculation induced by slow freezing can accelerate solid–liquid separation, offering a novel approach to obtain easily dispersed powders. Various patterns could be printed on paper and poly(ethylene terephthalate) by a simple and low-cost screen printing technique using the graphene powder, providing a new platform for scalable, low-cost printing of electronics. Consequently, this scalable and simple strategy can be satisfactorily applied to the preservation and separation of graphene and is expected to extend to other nanomaterials, including MoS2 and h-BN.

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Appendix
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Literature
1.
go back to reference Allen MJ, Tung VC, Kaner RB (2009) Honeycomb carbon: a review of graphene. Chem Rev 110:132–145CrossRef Allen MJ, Tung VC, Kaner RB (2009) Honeycomb carbon: a review of graphene. Chem Rev 110:132–145CrossRef
2.
3.
go back to reference Edwards RS, Coleman KS (2013) Graphene synthesis: relationship to applications. Nanoscale 5:38–51CrossRef Edwards RS, Coleman KS (2013) Graphene synthesis: relationship to applications. Nanoscale 5:38–51CrossRef
4.
go back to reference Brownson DAC, Varey SA, Hussain F et al (2014) Electrochemical properties of CVD grown pristine graphene: monolayer- vs. quasi-graphene. Nanoscale 6:1607–1621CrossRef Brownson DAC, Varey SA, Hussain F et al (2014) Electrochemical properties of CVD grown pristine graphene: monolayer- vs. quasi-graphene. Nanoscale 6:1607–1621CrossRef
6.
go back to reference Jia X, Campos-Delgado J, Terrones M et al (2011) Graphene edges: a review of their fabrication and characterization. Nanoscale 3:86–95CrossRef Jia X, Campos-Delgado J, Terrones M et al (2011) Graphene edges: a review of their fabrication and characterization. Nanoscale 3:86–95CrossRef
7.
go back to reference Abdelkader AM, Cooper AJ, Dryfe RAW et al (2015) How to get between the sheets: a review of recent works on the electrochemical exfoliation of graphene materials from bulk graphite. Nanoscale 7:6944–6956CrossRef Abdelkader AM, Cooper AJ, Dryfe RAW et al (2015) How to get between the sheets: a review of recent works on the electrochemical exfoliation of graphene materials from bulk graphite. Nanoscale 7:6944–6956CrossRef
8.
go back to reference Fang W, Hsu AL, Song Y et al (2015) A review of large-area bilayer graphene synthesis by chemical vapor deposition. Nanoscale 7:20335–20351CrossRef Fang W, Hsu AL, Song Y et al (2015) A review of large-area bilayer graphene synthesis by chemical vapor deposition. Nanoscale 7:20335–20351CrossRef
10.
go back to reference Hernandez Y, Nicolosi V, Lotya M et al (2008) High-yield production of graphene by liquid-phase exfoliation of graphite. Nat Nanotechnol 3:563–568CrossRef Hernandez Y, Nicolosi V, Lotya M et al (2008) High-yield production of graphene by liquid-phase exfoliation of graphite. Nat Nanotechnol 3:563–568CrossRef
11.
go back to reference Liu L, Shen Z, Yi M et al (2014) A green, rapid and size-controlled production of high-quality graphene sheets by hydrodynamic forces. RSC Adv 4:36464–36470CrossRef Liu L, Shen Z, Yi M et al (2014) A green, rapid and size-controlled production of high-quality graphene sheets by hydrodynamic forces. RSC Adv 4:36464–36470CrossRef
12.
go back to reference Choi W, Lahiri I, Seelaboyina R et al (2010) Synthesis of graphene and its applications: a review. Crit Rev Solid State Mater Sci 35:52–71CrossRef Choi W, Lahiri I, Seelaboyina R et al (2010) Synthesis of graphene and its applications: a review. Crit Rev Solid State Mater Sci 35:52–71CrossRef
13.
go back to reference Wei D, Kivioja J (2013) Graphene for energy solutions and its industrialization. Nanoscale 5:10108–10126CrossRef Wei D, Kivioja J (2013) Graphene for energy solutions and its industrialization. Nanoscale 5:10108–10126CrossRef
15.
go back to reference Ciesielski A, Samori P (2014) Graphene via sonication assisted liquid-phase exfoliation. Chem Soc Rev 43:381–398CrossRef Ciesielski A, Samori P (2014) Graphene via sonication assisted liquid-phase exfoliation. Chem Soc Rev 43:381–398CrossRef
16.
go back to reference Si Y, Samulski ET (2008) Synthesis of water soluble graphene. Nano Lett 8:1679–1682CrossRef Si Y, Samulski ET (2008) Synthesis of water soluble graphene. Nano Lett 8:1679–1682CrossRef
17.
go back to reference Wu Z, Liu J, Li Y et al (2015) Self-assembly of nanoclusters into Mono-Few-, and multilayered sheets via dipole-induced asymmetric van der waals attraction. ACS Nano 9:6315–6323CrossRef Wu Z, Liu J, Li Y et al (2015) Self-assembly of nanoclusters into Mono-Few-, and multilayered sheets via dipole-induced asymmetric van der waals attraction. ACS Nano 9:6315–6323CrossRef
18.
go back to reference Lee YJ, Huang L, Wang H et al (2015) Structural rearrangement and dispersion of functionalized graphene sheets in aqueous solutions. Colloids Interface Sci Commun 8:1–5CrossRef Lee YJ, Huang L, Wang H et al (2015) Structural rearrangement and dispersion of functionalized graphene sheets in aqueous solutions. Colloids Interface Sci Commun 8:1–5CrossRef
19.
go back to reference Su Y, Yang G, Lu K et al (2017) Colloidal properties and stability of aqueous suspensions of few-layer graphene: importance of graphene concentration. Environ Pollut 220:469–477CrossRef Su Y, Yang G, Lu K et al (2017) Colloidal properties and stability of aqueous suspensions of few-layer graphene: importance of graphene concentration. Environ Pollut 220:469–477CrossRef
20.
go back to reference Texter J (2014) Graphene dispersions. Curr Opin Colloid Interface Sci 19:163–174CrossRef Texter J (2014) Graphene dispersions. Curr Opin Colloid Interface Sci 19:163–174CrossRef
21.
go back to reference Liu J, Tang J, Gooding JJ (2012) Strategies for chemical modification of graphene and applications of chemically modified graphene. J Mater Chem 22:12435–12452CrossRef Liu J, Tang J, Gooding JJ (2012) Strategies for chemical modification of graphene and applications of chemically modified graphene. J Mater Chem 22:12435–12452CrossRef
22.
go back to reference Lin Y, Jin J, Song M (2011) Preparation and characterisation of covalent polymer functionalized graphene oxide. J Mater Chem 21:3455–3461CrossRef Lin Y, Jin J, Song M (2011) Preparation and characterisation of covalent polymer functionalized graphene oxide. J Mater Chem 21:3455–3461CrossRef
23.
go back to reference Shen Z, Li J, Yi M et al (2011) Preparation of graphene by jet cavitation. Nanotechnology 22:365306CrossRef Shen Z, Li J, Yi M et al (2011) Preparation of graphene by jet cavitation. Nanotechnology 22:365306CrossRef
24.
go back to reference Hernandez Y, Lotya M, Rickard D et al (2010) Measurement of multicomponent solubility parameters for graphene facilitates solvent discovery. Langmuir 26:3208–3213CrossRef Hernandez Y, Lotya M, Rickard D et al (2010) Measurement of multicomponent solubility parameters for graphene facilitates solvent discovery. Langmuir 26:3208–3213CrossRef
25.
go back to reference Hernandez Y, Nicolosi V, Lotya M et al (2008) High-yield production of graphene by liquid-phase exfoliation of graphite. Nat Nanotechnol 3:563–568CrossRef Hernandez Y, Nicolosi V, Lotya M et al (2008) High-yield production of graphene by liquid-phase exfoliation of graphite. Nat Nanotechnol 3:563–568CrossRef
26.
go back to reference Zhou KG, Mao NN, Wang HX et al (2011) A mixed-solvent strategy for efficient exfoliation of inorganic graphene analogues. Angew Chem Int Ed 50:10839–10842CrossRef Zhou KG, Mao NN, Wang HX et al (2011) A mixed-solvent strategy for efficient exfoliation of inorganic graphene analogues. Angew Chem Int Ed 50:10839–10842CrossRef
27.
go back to reference Yi M, Shen Z, Ma S et al (2012) A mixed-solvent strategy for facile and green preparation of graphene by liquid-phase exfoliation of graphite. J Nanopart Res 14:1–9CrossRef Yi M, Shen Z, Ma S et al (2012) A mixed-solvent strategy for facile and green preparation of graphene by liquid-phase exfoliation of graphite. J Nanopart Res 14:1–9CrossRef
28.
go back to reference Shen ZG, Li JZ, Yi M et al (2011) Preparation of graphene by jet cavitation. Nanotechnology 22:365306CrossRef Shen ZG, Li JZ, Yi M et al (2011) Preparation of graphene by jet cavitation. Nanotechnology 22:365306CrossRef
29.
go back to reference Ibrahem MA, T-w Lan, Huang JK et al (2013) High quantity and quality few-layers transition metal disulfide nanosheets from wet-milling exfoliation. RSC Adv 3:13193–13202CrossRef Ibrahem MA, T-w Lan, Huang JK et al (2013) High quantity and quality few-layers transition metal disulfide nanosheets from wet-milling exfoliation. RSC Adv 3:13193–13202CrossRef
30.
go back to reference Kudin KN, Ozbas B, Schniepp HC et al (2008) Raman spectra of graphite oxide and functionalized graphene sheets. Nano Lett 8:36–41CrossRef Kudin KN, Ozbas B, Schniepp HC et al (2008) Raman spectra of graphite oxide and functionalized graphene sheets. Nano Lett 8:36–41CrossRef
31.
go back to reference O’Neill A, Khan U, Nirmalraj PN et al (2011) Graphene dispersion and exfoliation in low boiling point solvents. J Phys Chem C 115:5422–5428CrossRef O’Neill A, Khan U, Nirmalraj PN et al (2011) Graphene dispersion and exfoliation in low boiling point solvents. J Phys Chem C 115:5422–5428CrossRef
32.
go back to reference Hansen CM (2012) Hansen solubility parameters: a user’s handbook. CRC Press, Boca Raton Hansen CM (2012) Hansen solubility parameters: a user’s handbook. CRC Press, Boca Raton
33.
go back to reference Hong J-Y, Jang J (2012) Highly stable, concentrated dispersions of graphene oxide sheets and their electro-responsive characteristics. Soft Matter 8:7348–7350CrossRef Hong J-Y, Jang J (2012) Highly stable, concentrated dispersions of graphene oxide sheets and their electro-responsive characteristics. Soft Matter 8:7348–7350CrossRef
34.
go back to reference Walter J, Nacken TJ, Damm C et al (2015) Graphene oxide: determination of the lateral dimension of graphene oxide nanosheets using analytical ultracentrifugation (small 7/2015). Small 11:814–825CrossRef Walter J, Nacken TJ, Damm C et al (2015) Graphene oxide: determination of the lateral dimension of graphene oxide nanosheets using analytical ultracentrifugation (small 7/2015). Small 11:814–825CrossRef
35.
go back to reference Silvera Batista CA, Zheng M, Khripin CY et al (2014) Rod hydrodynamics and length distributions of single-wall carbon nanotubes using analytical ultracentrifugation. Langmuir 30:4895–4904CrossRef Silvera Batista CA, Zheng M, Khripin CY et al (2014) Rod hydrodynamics and length distributions of single-wall carbon nanotubes using analytical ultracentrifugation. Langmuir 30:4895–4904CrossRef
36.
go back to reference Tirado MM, Martínez CL, Torre JG (1984) Comparison of theories for the translational and rotational diffusion coefficients of rod-like macromolecules. Application to short DNA fragments. J Chem Phys 81:2047–2052CrossRef Tirado MM, Martínez CL, Torre JG (1984) Comparison of theories for the translational and rotational diffusion coefficients of rod-like macromolecules. Application to short DNA fragments. J Chem Phys 81:2047–2052CrossRef
37.
go back to reference Steinberger R (1999) Chemical properties handbook. World Pub. Co., Beijing Steinberger R (1999) Chemical properties handbook. World Pub. Co., Beijing
38.
go back to reference Seeton CJ (2006) Viscosity–temperature correlation for liquids. Tribol Lett 22:67–78CrossRef Seeton CJ (2006) Viscosity–temperature correlation for liquids. Tribol Lett 22:67–78CrossRef
39.
go back to reference Aladko L, Manakov AY, Ogienko A et al (2009) New data on phase diagram and clathrate formation in the system water–isopropyl alcohol. J Incl Phenom Macrocycl Chem 63:151–157CrossRef Aladko L, Manakov AY, Ogienko A et al (2009) New data on phase diagram and clathrate formation in the system water–isopropyl alcohol. J Incl Phenom Macrocycl Chem 63:151–157CrossRef
40.
go back to reference Chen Z, Ren W, Gao L et al (2011) Three-dimensional flexible and conductive interconnected graphene networks grown by chemical vapour deposition. Nat Mater 10:424CrossRef Chen Z, Ren W, Gao L et al (2011) Three-dimensional flexible and conductive interconnected graphene networks grown by chemical vapour deposition. Nat Mater 10:424CrossRef
41.
go back to reference Hong J-Y, Yun S, Wie JJ et al (2016) Cartilage-inspired superelastic ultradurable graphene aerogels prepared by the selective gluing of intersheet joints. Nanoscale 8:12900–12909CrossRef Hong J-Y, Yun S, Wie JJ et al (2016) Cartilage-inspired superelastic ultradurable graphene aerogels prepared by the selective gluing of intersheet joints. Nanoscale 8:12900–12909CrossRef
Metadata
Title
Low-temperature treatment for preservation and separation of graphene dispersions
Authors
Lei Liu
Zhigang Shen
Xiaojing Zhang
Shulin Ma
Publication date
25-06-2018
Publisher
Springer US
Published in
Journal of Materials Science / Issue 19/2018
Print ISSN: 0022-2461
Electronic ISSN: 1573-4803
DOI
https://doi.org/10.1007/s10853-018-2572-1

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