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2021 | OriginalPaper | Buchkapitel

29. Low-Temperature Processed Metal Oxides and Ion-Exchanging Surfaces as pH Sensor

verfasst von : Cyril Oluchukwu Ugwuoke, Philips Chidubem Tagbo, Onyeka Stanislaus Okwundu, Chukwujekwu Augustine Okaro, Sabastine Ezugwu, Fabian I. Ezema

Erschienen in: Chemically Deposited Nanocrystalline Metal Oxide Thin Films

Verlag: Springer International Publishing

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Abstract

Precise pH measurement is crucial in the assessment of various physical, chemical, and biological processes. While the common glass electrode is known for its exceptional pH sensing performance, it has limited applicability. As a result, H+ sensitive MOx, which can be made into miniature physically rugged sleeves, applicable in vivo, in harsh environments, and even in cases where the volume of the sample solution is highly restricted (such as sensing of exuding sweat), are gaining attention as pH sensors. In this chapter, we present the principal mode of operation of electrochemical pH sensors and the detailed mechanism of sensing with MOx. We also considered various fabrication methods for MOx sensing electrodes (SEs). Lastly, after describing several pH sensor performance measures, the practical performances of some MOx SEs were reviewed. In all, this chapter is meant to provide an insight into pH sensing using MOx-based electrodes.

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Literatur
1.
Zurück zum Zitat Sörenson SPL (1909) Enzyme studies II . The measurement and meaning of hydrogen ion concentration in enzymatic processes. Biochem Z 21:131–200 Sörenson SPL (1909) Enzyme studies II . The measurement and meaning of hydrogen ion concentration in enzymatic processes. Biochem Z 21:131–200
2.
Zurück zum Zitat Kolb D (1979) The pH concept. Chem Princ Revisit 56:49–53 Kolb D (1979) The pH concept. Chem Princ Revisit 56:49–53
3.
Zurück zum Zitat Covington AK, Bates RG, Durst RA (1985) Definition of pH scales, standard reference values, measurement of pH and related terminology (recommendations 1984). Pure Appl Chem 57:531–542CrossRef Covington AK, Bates RG, Durst RA (1985) Definition of pH scales, standard reference values, measurement of pH and related terminology (recommendations 1984). Pure Appl Chem 57:531–542CrossRef
4.
Zurück zum Zitat Rondinini S, Covington AK, Brett CMA, Camoes MF (2002) Measurement of pH. Definition, standards, and procedures (IUPAC recommendations 2002). Pure Appl Chem 74:2169–2200CrossRef Rondinini S, Covington AK, Brett CMA, Camoes MF (2002) Measurement of pH. Definition, standards, and procedures (IUPAC recommendations 2002). Pure Appl Chem 74:2169–2200CrossRef
5.
Zurück zum Zitat Rockwood AL (2015) Meaning and measurability of single-ion activities, the thermodynamic foundations of pH, and the Gibbs free energy for the transfer of ions between dissimilar materials. Chem Phys Chem 16(9):1978–1991CrossRef Rockwood AL (2015) Meaning and measurability of single-ion activities, the thermodynamic foundations of pH, and the Gibbs free energy for the transfer of ions between dissimilar materials. Chem Phys Chem 16(9):1978–1991CrossRef
7.
Zurück zum Zitat Shuk P, Ramanujachary KV, Greenblatt M (1996) New metal-oxide-type pH sensors. Solid State Ion 86–88:1115–I120CrossRef Shuk P, Ramanujachary KV, Greenblatt M (1996) New metal-oxide-type pH sensors. Solid State Ion 86–88:1115–I120CrossRef
8.
Zurück zum Zitat Uria N, Abramova N, Bratov A, Muñoz-pascual F (2016) Miniaturized metal oxide pH sensors for bacteria detection talanta miniaturized metal oxide pH sensors for bacteria detection. Talanta 147:364–369CrossRef Uria N, Abramova N, Bratov A, Muñoz-pascual F (2016) Miniaturized metal oxide pH sensors for bacteria detection talanta miniaturized metal oxide pH sensors for bacteria detection. Talanta 147:364–369CrossRef
9.
Zurück zum Zitat Sadig HR, Cheng L (2019) Synthesis of tetra-metal oxide system based pH sensor via branched cathodic electrodeposition on different substrates. Arab J Chem 12:610–620CrossRef Sadig HR, Cheng L (2019) Synthesis of tetra-metal oxide system based pH sensor via branched cathodic electrodeposition on different substrates. Arab J Chem 12:610–620CrossRef
10.
Zurück zum Zitat Korostynska O (2008) Mixed metal oxide films as pH sensing materials. Microsyst Technol 14:499–507CrossRef Korostynska O (2008) Mixed metal oxide films as pH sensing materials. Microsyst Technol 14:499–507CrossRef
11.
Zurück zum Zitat Manjakkal L, Dahiya SD, Dahiya R (2020) Flexible potentiometric pH sensors for wearable. RSC Adv 10:8594–8617CrossRef Manjakkal L, Dahiya SD, Dahiya R (2020) Flexible potentiometric pH sensors for wearable. RSC Adv 10:8594–8617CrossRef
14.
Zurück zum Zitat Mohamed MBI, Aysha TS, Elmorsi TM, El-sedik M, Omara ST, Shaban E, Kandil OM, Bedair AH (2020) Colorimetric chemosensor and turn on fluorescence probe for pH monitoring based on xanthene dye derivatives and its bioimaging of living Escherichia coli bacteria. J Fluoresc 30:601–612. https://doi.org/10.1007/s10895-020-02522-1CrossRef Mohamed MBI, Aysha TS, Elmorsi TM, El-sedik M, Omara ST, Shaban E, Kandil OM, Bedair AH (2020) Colorimetric chemosensor and turn on fluorescence probe for pH monitoring based on xanthene dye derivatives and its bioimaging of living Escherichia coli bacteria. J Fluoresc 30:601–612. https://​doi.​org/​10.​1007/​s10895-020-02522-1CrossRef
15.
Zurück zum Zitat Manjakkal L, Szwagierczak D, Dahiya R (2020) Metal oxides based electrochemical pH sensors: current progress and future perspectives. Prog Mater Sci 109:100635CrossRef Manjakkal L, Szwagierczak D, Dahiya R (2020) Metal oxides based electrochemical pH sensors: current progress and future perspectives. Prog Mater Sci 109:100635CrossRef
16.
Zurück zum Zitat Kurzweil P (2009) Metal oxides and ion-exchanging surfaces as pH sensors in liquids: state-of-the-art and outlook. Sensors 9:4955–4985CrossRef Kurzweil P (2009) Metal oxides and ion-exchanging surfaces as pH sensors in liquids: state-of-the-art and outlook. Sensors 9:4955–4985CrossRef
19.
Zurück zum Zitat Ababio OY (1980) New school chemistry for senior secondary schools, revised ed. Africana First Publishers PLC, Abuja Ababio OY (1980) New school chemistry for senior secondary schools, revised ed. Africana First Publishers PLC, Abuja
22.
Zurück zum Zitat Pungor E (1998) The theory of ion-selective electrodes. Anal Sci 14:249–256CrossRef Pungor E (1998) The theory of ion-selective electrodes. Anal Sci 14:249–256CrossRef
23.
Zurück zum Zitat Kuo C, Wang S, Ko R, Tseng H (2018) Super-Nernstian pH sensors based on WO3 nanosheets. Jpn J Appl Phys 57:2–9CrossRef Kuo C, Wang S, Ko R, Tseng H (2018) Super-Nernstian pH sensors based on WO3 nanosheets. Jpn J Appl Phys 57:2–9CrossRef
24.
Zurück zum Zitat Khalil M, Liu N, Lee RL (2018) Super-Nernstian potentiometric pH sensor based on the electrodeposition of iridium oxide nanoparticles. Int J Technol 3:446–454CrossRef Khalil M, Liu N, Lee RL (2018) Super-Nernstian potentiometric pH sensor based on the electrodeposition of iridium oxide nanoparticles. Int J Technol 3:446–454CrossRef
26.
Zurück zum Zitat Pyo J, Cho W (2018) High-sensitivity pH sensor using separative extended-gate field-effect transistors with single-walled carbon-nanotube networks. Jpn J Appl Phys 57:04FP02CrossRef Pyo J, Cho W (2018) High-sensitivity pH sensor using separative extended-gate field-effect transistors with single-walled carbon-nanotube networks. Jpn J Appl Phys 57:04FP02CrossRef
27.
Zurück zum Zitat Fog A, Buck RP (1984) Electronic semiconducting oxides as pH sensors. Sens Actuators 5:137–146CrossRef Fog A, Buck RP (1984) Electronic semiconducting oxides as pH sensors. Sens Actuators 5:137–146CrossRef
28.
Zurück zum Zitat Hu X, Leng Z (1995) Highly selective and super-Nernstian potentiometry for determination of Cu2+ using carbon paste electrode. Anal Lett 28:979–989CrossRef Hu X, Leng Z (1995) Highly selective and super-Nernstian potentiometry for determination of Cu2+ using carbon paste electrode. Anal Lett 28:979–989CrossRef
29.
Zurück zum Zitat Manjakkal L, Vilouras A, Dahiya R (2018) Screen printed thick film reference electrodes for electrochemical sensing. IEEE Sens J 18:7779–7785CrossRef Manjakkal L, Vilouras A, Dahiya R (2018) Screen printed thick film reference electrodes for electrochemical sensing. IEEE Sens J 18:7779–7785CrossRef
30.
Zurück zum Zitat Van der Spiegel J, Lauks I, Chan P, Babic D (1983) The extended gate chemically sensitive field effect transistor as multi-species microprobe. Sens Actuators 4:291–298CrossRef Van der Spiegel J, Lauks I, Chan P, Babic D (1983) The extended gate chemically sensitive field effect transistor as multi-species microprobe. Sens Actuators 4:291–298CrossRef
31.
Zurück zum Zitat Nowotny MK, Bak T, Nowotny J (2006) Electrical properties and defect chemistry of TiO2 single crystal. III. Equilibration kinetics and chemical diffusion. J Phys Chem B 110:16292–16301CrossRef Nowotny MK, Bak T, Nowotny J (2006) Electrical properties and defect chemistry of TiO2 single crystal. III. Equilibration kinetics and chemical diffusion. J Phys Chem B 110:16292–16301CrossRef
32.
Zurück zum Zitat Goodenough JB (1971) Metallic oxides. In: Reiss H (ed) Progress in solid state chemistry. Pergamon Press, London, p 145 Goodenough JB (1971) Metallic oxides. In: Reiss H (ed) Progress in solid state chemistry. Pergamon Press, London, p 145
33.
Zurück zum Zitat Johnson JRT, Panas I (2000) Water adsorption and hydrolysis on molecular transition metal oxides and oxyhydroxides. Inorg Chem 39:3181–3191CrossRef Johnson JRT, Panas I (2000) Water adsorption and hydrolysis on molecular transition metal oxides and oxyhydroxides. Inorg Chem 39:3181–3191CrossRef
34.
Zurück zum Zitat Brown GE Jr, Henrich V, Casey W et al (1999) Metal oxide surfaces and their interactions with aqueous solutions and microbial organisms. Chem Rev 99:77–174CrossRef Brown GE Jr, Henrich V, Casey W et al (1999) Metal oxide surfaces and their interactions with aqueous solutions and microbial organisms. Chem Rev 99:77–174CrossRef
35.
Zurück zum Zitat Olthuis W, Robben MA, Bergveld P, Bos M, van der Linden WE (1990) pH sensor properties of electrochemically grown iridium oxide. Sens Actuators B 2:247–256CrossRef Olthuis W, Robben MA, Bergveld P, Bos M, van der Linden WE (1990) pH sensor properties of electrochemically grown iridium oxide. Sens Actuators B 2:247–256CrossRef
36.
Zurück zum Zitat Mcmurray HN, Douglas P, Abbot D (1995) Novel thick-film pH sensors based on ruthenium dioxide-glass composites. Sens Actuators B 28:9–15CrossRef Mcmurray HN, Douglas P, Abbot D (1995) Novel thick-film pH sensors based on ruthenium dioxide-glass composites. Sens Actuators B 28:9–15CrossRef
37.
Zurück zum Zitat Pawar SM, Pawar BS, Kim JH, Joo OS, Lokhande CD (2011) Recent status of chemical bath deposited metal chalcogenide and metal oxide thin films. Curr Appl Phys 11:117–161CrossRef Pawar SM, Pawar BS, Kim JH, Joo OS, Lokhande CD (2011) Recent status of chemical bath deposited metal chalcogenide and metal oxide thin films. Curr Appl Phys 11:117–161CrossRef
39.
Zurück zum Zitat Özdal T, Kavak H (2020) Fabrication and characterization of ZnO/Cu2O heterostructures for solar cells applications. Superlattices Microstruct 146:106679CrossRef Özdal T, Kavak H (2020) Fabrication and characterization of ZnO/Cu2O heterostructures for solar cells applications. Superlattices Microstruct 146:106679CrossRef
41.
Zurück zum Zitat Karatutlu A, Barhoum A, Sapelkin A (2018) Liquid-phase synthesis of nanoparticles and nanostructured materials. In: Emerging applications of nanoparticles and architecture nanostructures. Current prospects and future trends. Elsevier, Amsterdam, pp 1–28 Karatutlu A, Barhoum A, Sapelkin A (2018) Liquid-phase synthesis of nanoparticles and nanostructured materials. In: Emerging applications of nanoparticles and architecture nanostructures. Current prospects and future trends. Elsevier, Amsterdam, pp 1–28
42.
Zurück zum Zitat Özdal T, Taktakoʇlu R, Özdamar H, Esen M, Takçi DK, Kavak H (2015) Crystallinity improvement of ZnO nanorods by optimization of low-cost electrodeposition technique. Thin Solid Films 592:143–149CrossRef Özdal T, Taktakoʇlu R, Özdamar H, Esen M, Takçi DK, Kavak H (2015) Crystallinity improvement of ZnO nanorods by optimization of low-cost electrodeposition technique. Thin Solid Films 592:143–149CrossRef
43.
Zurück zum Zitat Cui J, Gibson UJ (2010) A simple two-step electrodeposition of Cu2O/ZnO nanopillar solar cells. J Phys Chem C 114:6408–6412CrossRef Cui J, Gibson UJ (2010) A simple two-step electrodeposition of Cu2O/ZnO nanopillar solar cells. J Phys Chem C 114:6408–6412CrossRef
46.
Zurück zum Zitat Sardarinejad A, Maurya DK, Alameh K (2015) The pH sensing properties of RF sputtered RuO2 thin-film prepared using different Ar/O2 flow ratio. Materials (Basel) 8(6):3352–3363CrossRef Sardarinejad A, Maurya DK, Alameh K (2015) The pH sensing properties of RF sputtered RuO2 thin-film prepared using different Ar/O2 flow ratio. Materials (Basel) 8(6):3352–3363CrossRef
47.
Zurück zum Zitat Rabenau A (1985) The role of hydrothermal synthesis in preparative chemistry. Angew Chem Int Ed Engl 24:1026–1040CrossRef Rabenau A (1985) The role of hydrothermal synthesis in preparative chemistry. Angew Chem Int Ed Engl 24:1026–1040CrossRef
49.
Zurück zum Zitat Luqman Bin M, Napi M (2017) Fabrication and characterization of nanostructured Fluorine doped tin oxide thin film for DSSC by hydrothermal method. Universiti Tun Hussein Onn Malaysia. Luqman Bin M, Napi M (2017) Fabrication and characterization of nanostructured Fluorine doped tin oxide thin film for DSSC by hydrothermal method. Universiti Tun Hussein Onn Malaysia.
50.
Zurück zum Zitat Walton RI (2020) Perovskite oxides prepared by hydrothermal and solvothermal synthesis: a review of crystallisation, chemistry, and compositions. Chem A Eur J 26(42):9041–9069CrossRef Walton RI (2020) Perovskite oxides prepared by hydrothermal and solvothermal synthesis: a review of crystallisation, chemistry, and compositions. Chem A Eur J 26(42):9041–9069CrossRef
51.
Zurück zum Zitat Yoshimura M, Byrappa K (2008) Hydrothermal processing of materials: past, present and future. J Mater Sci 43:2085–2103CrossRef Yoshimura M, Byrappa K (2008) Hydrothermal processing of materials: past, present and future. J Mater Sci 43:2085–2103CrossRef
52.
Zurück zum Zitat Byrappa K, Adschiri T (2007) Hydrothermal technology for nanotechnology. Prog Cryst Growth Charact Mater 53:117–166CrossRef Byrappa K, Adschiri T (2007) Hydrothermal technology for nanotechnology. Prog Cryst Growth Charact Mater 53:117–166CrossRef
53.
Zurück zum Zitat Castro N, Pereira N, Cardoso VF, Ribeiro C, Lanceros-Mendez S (2019) Micro- and nanostructured piezoelectric polymers: fundamentals and application. In: Frontiers of nanoscience. Elsevier, Amsterdam, pp 35–65 Castro N, Pereira N, Cardoso VF, Ribeiro C, Lanceros-Mendez S (2019) Micro- and nanostructured piezoelectric polymers: fundamentals and application. In: Frontiers of nanoscience. Elsevier, Amsterdam, pp 35–65
54.
Zurück zum Zitat Boudrioua A, Chakaroun M, Fischer A (2017) Organic light-emitting diodes. In: Orptics lasers. Elsevier, Amsterdam, pp 49–93 Boudrioua A, Chakaroun M, Fischer A (2017) Organic light-emitting diodes. In: Orptics lasers. Elsevier, Amsterdam, pp 49–93
55.
Zurück zum Zitat Kumar S, Saralch S, Jabeen U, Pathak D (2020) Metal oxides for energy applications. In: Colloidal metal oxide nanoparticles. Elsevier, Amsterdam, pp 471–504CrossRef Kumar S, Saralch S, Jabeen U, Pathak D (2020) Metal oxides for energy applications. In: Colloidal metal oxide nanoparticles. Elsevier, Amsterdam, pp 471–504CrossRef
57.
Zurück zum Zitat Thiagarajan S, Sanmugam A, Vikraman D (2017) Facile methodology of sol-gel synthesis for metal oxide nanostructures. In: Recent applications in sol-gel synthesis. InTechOpen, London, pp 2–3 Thiagarajan S, Sanmugam A, Vikraman D (2017) Facile methodology of sol-gel synthesis for metal oxide nanostructures. In: Recent applications in sol-gel synthesis. InTechOpen, London, pp 2–3
59.
Zurück zum Zitat Pena-Pereira F, Duarte RMBO, Duarte AC (2012) Immobilization strategies and analytical applications for metallic and metal-oxide nanomaterials on surfaces. TrAC - Trends Anal Chem 40:90–105CrossRef Pena-Pereira F, Duarte RMBO, Duarte AC (2012) Immobilization strategies and analytical applications for metallic and metal-oxide nanomaterials on surfaces. TrAC - Trends Anal Chem 40:90–105CrossRef
60.
Zurück zum Zitat Livage J, Ganguli D (2001) Sol–gel electrochromic coatings and devices: a review. Sol Energy Mater Sol Cells 68:365–381CrossRef Livage J, Ganguli D (2001) Sol–gel electrochromic coatings and devices: a review. Sol Energy Mater Sol Cells 68:365–381CrossRef
61.
Zurück zum Zitat Hone FG, Abza T (2019) Short review of factors affecting chemical bath deposition method for metal chalcogenide thin films. Int J Thin Film Sci Technol 8:43–52 Hone FG, Abza T (2019) Short review of factors affecting chemical bath deposition method for metal chalcogenide thin films. Int J Thin Film Sci Technol 8:43–52
62.
Zurück zum Zitat Khallaf H (2009) Chemical bath deposition of group II-VI semiconductor thin films for solar cells applications. University of Central Florida, Orlando Khallaf H (2009) Chemical bath deposition of group II-VI semiconductor thin films for solar cells applications. University of Central Florida, Orlando
63.
Zurück zum Zitat Ezekoye BA, Offor PO, Ezekoye VA, Ezema FI (2013) Chemical bath deposition technique of thin films: a review. Int J Sci Res 2:452–456 Ezekoye BA, Offor PO, Ezekoye VA, Ezema FI (2013) Chemical bath deposition technique of thin films: a review. Int J Sci Res 2:452–456
65.
Zurück zum Zitat D. Tyona M, U. Osuji R, D. Lokhande C, I. Ezema F (2018) Photovoltaic properties of aluminum doped zinc oxide electrodes based on variation of aluminum impurities in the semiconductor. J Mater Phys Chem 6:9–16 D. Tyona M, U. Osuji R, D. Lokhande C, I. Ezema F (2018) Photovoltaic properties of aluminum doped zinc oxide electrodes based on variation of aluminum impurities in the semiconductor. J Mater Phys Chem 6:9–16
66.
Zurück zum Zitat Mugle D, Jadhav G (2016) Short review on chemical bath deposition of thin film and characterization. In: AIP conference proceedings. American Institute of Physics, College Park, p 020597 Mugle D, Jadhav G (2016) Short review on chemical bath deposition of thin film and characterization. In: AIP conference proceedings. American Institute of Physics, College Park, p 020597
67.
Zurück zum Zitat Lupan O, Shishiyanu S, Chow L, Shishiyanu T (2008) Nanostructured zinc oxide gas sensors by successive ionic layer adsorption and reaction method and rapid photothermal processing. Thin Solid Films 516:3338–3345CrossRef Lupan O, Shishiyanu S, Chow L, Shishiyanu T (2008) Nanostructured zinc oxide gas sensors by successive ionic layer adsorption and reaction method and rapid photothermal processing. Thin Solid Films 516:3338–3345CrossRef
69.
Zurück zum Zitat Sreedev P, Rakhesh V, Roshima N, Shankar B (2019) Preparation of zinc oxide thin films by SILAR method and its optical analysis. J Phys Conf Ser 1172:12024CrossRef Sreedev P, Rakhesh V, Roshima N, Shankar B (2019) Preparation of zinc oxide thin films by SILAR method and its optical analysis. J Phys Conf Ser 1172:12024CrossRef
70.
Zurück zum Zitat Patil VL, Vanalakar SA, Patil PS, Kim JH (2017) Fabrication of nanostructured ZnO thin films based NO2 gas sensor via SILAR technique. Sens Actuators B 239:1185–1193CrossRef Patil VL, Vanalakar SA, Patil PS, Kim JH (2017) Fabrication of nanostructured ZnO thin films based NO2 gas sensor via SILAR technique. Sens Actuators B 239:1185–1193CrossRef
71.
Zurück zum Zitat Sreedev P, Sunil M, Rakhesh V, Roshima NS, Shankar B, Krishnan D (2020) Optical, structural and surface analysis of ZnO thin films prepared by SILAR method. In: AIP Conference Proceedings. American Institute of Physics, College Park, p 20010 Sreedev P, Sunil M, Rakhesh V, Roshima NS, Shankar B, Krishnan D (2020) Optical, structural and surface analysis of ZnO thin films prepared by SILAR method. In: AIP Conference Proceedings. American Institute of Physics, College Park, p 20010
72.
Zurück zum Zitat Malashchonak MV, Streltsov EA, Mazanik AV, Kulak AI, Poznyak SK, Stroyuk OL, Kuchmiy SY, Gaiduk PI (2015) Band-gap and sub-band-gap photoelectrochemical processes at nanocrystalline CdS grown on ZnO by successive ionic layer adsorption and reaction method. Thin Solid Films 589:145–152CrossRef Malashchonak MV, Streltsov EA, Mazanik AV, Kulak AI, Poznyak SK, Stroyuk OL, Kuchmiy SY, Gaiduk PI (2015) Band-gap and sub-band-gap photoelectrochemical processes at nanocrystalline CdS grown on ZnO by successive ionic layer adsorption and reaction method. Thin Solid Films 589:145–152CrossRef
73.
Zurück zum Zitat Xu B, Zhang W (2010) Modification of vertically aligned carbon nanotubes with RuO2 for a solid-state pH sensor. Electrochim Acta 55:2859–2864CrossRef Xu B, Zhang W (2010) Modification of vertically aligned carbon nanotubes with RuO2 for a solid-state pH sensor. Electrochim Acta 55:2859–2864CrossRef
74.
Zurück zum Zitat Bakker E (1996) Determination of improved selectivity coefficients of polymer membrane ion-selective electrodes by conditioning with a discriminated ion. J Electrochem Soc 143:L83CrossRef Bakker E (1996) Determination of improved selectivity coefficients of polymer membrane ion-selective electrodes by conditioning with a discriminated ion. J Electrochem Soc 143:L83CrossRef
77.
Zurück zum Zitat Mikheslson KN (2013) Ion-selective electrode characteristics. In: Lecture notes in chemistry, vol 81. Springer, Berlin, pp 135–148 Mikheslson KN (2013) Ion-selective electrode characteristics. In: Lecture notes in chemistry, vol 81. Springer, Berlin, pp 135–148
79.
Zurück zum Zitat Bakker E, Pretsch E, Bühlmann P (2000) Selectivity of potentiometric ion sensors. Anal Chem 72:1127–1133CrossRef Bakker E, Pretsch E, Bühlmann P (2000) Selectivity of potentiometric ion sensors. Anal Chem 72:1127–1133CrossRef
80.
Zurück zum Zitat Bousse L, Mostarshed S, van der Schoot B, de Rooij NF (1994) Comparison of the hysteresis of Ta2O5 and Si3N4 pH-sensing insulators. Sens Actuators B 17:157–164CrossRef Bousse L, Mostarshed S, van der Schoot B, de Rooij NF (1994) Comparison of the hysteresis of Ta2O5 and Si3N4 pH-sensing insulators. Sens Actuators B 17:157–164CrossRef
81.
Zurück zum Zitat Buck RP, Lindner E (1994) Recomendations for nomenclature of ion-selective electrodes (IUPAC recommendations 1994). Pure Appl Chem 66:2527–2536CrossRef Buck RP, Lindner E (1994) Recomendations for nomenclature of ion-selective electrodes (IUPAC recommendations 1994). Pure Appl Chem 66:2527–2536CrossRef
82.
Zurück zum Zitat Maurya DK, Sardarinejad A, Alameh K (2013) High-sensitivity pH sensor employing a sub-micron ruthenium oxide thin-film in conjunction with a thick reference electrode. Sens Actuators A Phys 203:300–303CrossRef Maurya DK, Sardarinejad A, Alameh K (2013) High-sensitivity pH sensor employing a sub-micron ruthenium oxide thin-film in conjunction with a thick reference electrode. Sens Actuators A Phys 203:300–303CrossRef
83.
Zurück zum Zitat Manjakkal L, Cvejin K, Kulawik J, Zaraska K, Szwagierczak D (2013) A low-cost pH sensor based on RuO2 resistor material. Nano Hybrids 5:1–15CrossRef Manjakkal L, Cvejin K, Kulawik J, Zaraska K, Szwagierczak D (2013) A low-cost pH sensor based on RuO2 resistor material. Nano Hybrids 5:1–15CrossRef
85.
Zurück zum Zitat Manjakkal L, Cvejin K, Kulawik J, Zaraska K, Szwagierczak D, Stojanovic G (2015) Sensing mechanism of RuO2-SnO2 thick film pH sensors studied by potentiometric method and electrochemical impedance spectroscopy. J Electroanal Chem 759:82–90CrossRef Manjakkal L, Cvejin K, Kulawik J, Zaraska K, Szwagierczak D, Stojanovic G (2015) Sensing mechanism of RuO2-SnO2 thick film pH sensors studied by potentiometric method and electrochemical impedance spectroscopy. J Electroanal Chem 759:82–90CrossRef
87.
Zurück zum Zitat Manjakkal L, Cvejin K, Kulawik J, Zaraska K, Szwagierczak D, Socha RP (2014) Fabrication of thick film sensitive RuO2-TiO2 and Ag/AgCl/KCl reference electrodes and their application for pH measurements. Sens Actuators B 204:57–67CrossRef Manjakkal L, Cvejin K, Kulawik J, Zaraska K, Szwagierczak D, Socha RP (2014) Fabrication of thick film sensitive RuO2-TiO2 and Ag/AgCl/KCl reference electrodes and their application for pH measurements. Sens Actuators B 204:57–67CrossRef
89.
Zurück zum Zitat Zhuiykov S (2009) Morphology of Pt-doped nanofabricated RuO2 sensing electrodes and their properties in water quality monitoring sensors. Sens Actuators B Chem 136:248–256CrossRef Zhuiykov S (2009) Morphology of Pt-doped nanofabricated RuO2 sensing electrodes and their properties in water quality monitoring sensors. Sens Actuators B Chem 136:248–256CrossRef
91.
Zurück zum Zitat Tsai YT, Chang SJ, Ji LW, Hsiao YJ, Tang IT (2019) Fast detection and flexible microfluidic pH sensors based on Al-doped ZnO nanosheets with a novel morphology. ACS Omega 4:19847–19855CrossRef Tsai YT, Chang SJ, Ji LW, Hsiao YJ, Tang IT (2019) Fast detection and flexible microfluidic pH sensors based on Al-doped ZnO nanosheets with a novel morphology. ACS Omega 4:19847–19855CrossRef
92.
Zurück zum Zitat Vasilyeva MS, Lukiyanchuk IV, Yu A, Shchitovskaya EV, Marinina GI (2020) Anodic-cathodic formation of pH-sensitive TiO2-MoOx films on titanium. J Electroanal Chem 873:2–11CrossRef Vasilyeva MS, Lukiyanchuk IV, Yu A, Shchitovskaya EV, Marinina GI (2020) Anodic-cathodic formation of pH-sensitive TiO2-MoOx films on titanium. J Electroanal Chem 873:2–11CrossRef
93.
Zurück zum Zitat Chen M, Jin Y, Qu X, Jin Q, Zhao J (2014) Electrochemical impedance spectroscopy study of Ta2O5 based EIOS pH sensors in acid environment. Sens Actuators B 192:399–405CrossRef Chen M, Jin Y, Qu X, Jin Q, Zhao J (2014) Electrochemical impedance spectroscopy study of Ta2O5 based EIOS pH sensors in acid environment. Sens Actuators B 192:399–405CrossRef
94.
Zurück zum Zitat Prats-Alfonso E, Abad L, Casañ-Pastor N, Gonzalo-Ruiz J, Baldrich E (2013) Iridium oxide pH sensor for biomedical applications. Case urea-urease in real urine samples. Biosens Bioelectron 39:163–169CrossRef Prats-Alfonso E, Abad L, Casañ-Pastor N, Gonzalo-Ruiz J, Baldrich E (2013) Iridium oxide pH sensor for biomedical applications. Case urea-urease in real urine samples. Biosens Bioelectron 39:163–169CrossRef
95.
Zurück zum Zitat Razmi H, Heidari H, Habibi E (2008) Ph-sensing properties of PbO2 thin film electrodeposited on carbon ceramic electrode. J Solid State Electrochem 12:1579–1587CrossRef Razmi H, Heidari H, Habibi E (2008) Ph-sensing properties of PbO2 thin film electrodeposited on carbon ceramic electrode. J Solid State Electrochem 12:1579–1587CrossRef
96.
Zurück zum Zitat Arida H (2015) Novel pH microsensor based on a thin film gold electrode modified with lead dioxide nanoparticles. Microchim Acta 182:149–156CrossRef Arida H (2015) Novel pH microsensor based on a thin film gold electrode modified with lead dioxide nanoparticles. Microchim Acta 182:149–156CrossRef
97.
Zurück zum Zitat Marsh P, Manjakkal L, Yang X, Huerta M, Le T, Thiel L, Chiao JC, Cao H, Dahiya R (2020) Flexible iridium oxide based pH sensor integrated with inductively coupled wireless transmission system for wearable applications. IEEE Sens J 20:5130–5138CrossRef Marsh P, Manjakkal L, Yang X, Huerta M, Le T, Thiel L, Chiao JC, Cao H, Dahiya R (2020) Flexible iridium oxide based pH sensor integrated with inductively coupled wireless transmission system for wearable applications. IEEE Sens J 20:5130–5138CrossRef
98.
Zurück zum Zitat Marzouk SAM, Ufer S, Buck RP, Johnson TA, Dunlap LA, Cascio WE (1998) Electrodeposited iridium oxide pH electrode for measurement of extracellular myocardial acidosis during acute ischemia. Anal Chem 70:5054–5061CrossRef Marzouk SAM, Ufer S, Buck RP, Johnson TA, Dunlap LA, Cascio WE (1998) Electrodeposited iridium oxide pH electrode for measurement of extracellular myocardial acidosis during acute ischemia. Anal Chem 70:5054–5061CrossRef
99.
Zurück zum Zitat Kreider K (1991) Iridium oxide thin-film stability in high-temperature corrosive solutions. Sens Actuators B 5:165–169CrossRef Kreider K (1991) Iridium oxide thin-film stability in high-temperature corrosive solutions. Sens Actuators B 5:165–169CrossRef
100.
Zurück zum Zitat Cherchour N, Deslouis C, Messaoudi B, Pailleret A (2011) PH sensing in aqueous solutions using a MnO2 thin film electrodeposited on a glassy carbon electrode. Electrochim Acta 56:9746–9755CrossRef Cherchour N, Deslouis C, Messaoudi B, Pailleret A (2011) PH sensing in aqueous solutions using a MnO2 thin film electrodeposited on a glassy carbon electrode. Electrochim Acta 56:9746–9755CrossRef
101.
Zurück zum Zitat De Campos RC, Cestarolli DT, Mulato M, Guerra EM (2015) Comparative sensibility study of WO3 pH sensor using EGFET and ciclic voltammetry. Mater Res 18:15–19CrossRef De Campos RC, Cestarolli DT, Mulato M, Guerra EM (2015) Comparative sensibility study of WO3 pH sensor using EGFET and ciclic voltammetry. Mater Res 18:15–19CrossRef
102.
Zurück zum Zitat Santos L, Neto JP, Crespo A et al (2014) WO3 nanoparticle-based conformable pH sensor. ACS Appl Mater Interfaces 6:12226–12234CrossRef Santos L, Neto JP, Crespo A et al (2014) WO3 nanoparticle-based conformable pH sensor. ACS Appl Mater Interfaces 6:12226–12234CrossRef
103.
Zurück zum Zitat Jamal M, Razeeb KM, Shao H, Islam J, Akhter I, Furukawa H, Khosla A (2019) Development of tungsten oxide nanoparticle modified carbon fibre cloth as flexible pH sensor. Sci Rep 9:1–9CrossRef Jamal M, Razeeb KM, Shao H, Islam J, Akhter I, Furukawa H, Khosla A (2019) Development of tungsten oxide nanoparticle modified carbon fibre cloth as flexible pH sensor. Sci Rep 9:1–9CrossRef
104.
Zurück zum Zitat Mohammad-Rezaei R, Soroodian S, Esmaeili G (2019) Manganese oxide nanoparticles electrodeposited on graphenized pencil lead electrode as a sensitive miniaturized pH sensor. J Mater Sci Mater Electron 30:1998–2005CrossRef Mohammad-Rezaei R, Soroodian S, Esmaeili G (2019) Manganese oxide nanoparticles electrodeposited on graphenized pencil lead electrode as a sensitive miniaturized pH sensor. J Mater Sci Mater Electron 30:1998–2005CrossRef
105.
Zurück zum Zitat Betelu S, Polychronopoulou K, Rebholz C, Ignatiadis I (2011) Novel CeO2-based screen-printed potentiometric electrodes for pH monitoring. Talanta 87:126–135CrossRef Betelu S, Polychronopoulou K, Rebholz C, Ignatiadis I (2011) Novel CeO2-based screen-printed potentiometric electrodes for pH monitoring. Talanta 87:126–135CrossRef
106.
Zurück zum Zitat Kaisti M (2017) Biosensors and bioelectronics detection principles of biological and chemical FET sensors. Biosens Bioelectron 98:437–448CrossRef Kaisti M (2017) Biosensors and bioelectronics detection principles of biological and chemical FET sensors. Biosens Bioelectron 98:437–448CrossRef
107.
Zurück zum Zitat Huang W, Cao H, Deb S, Chiao M, Chiao JC (2011) A flexible pH sensor based on the iridium oxide sensing film. Sens Actuators A Phys 169:1–11CrossRef Huang W, Cao H, Deb S, Chiao M, Chiao JC (2011) A flexible pH sensor based on the iridium oxide sensing film. Sens Actuators A Phys 169:1–11CrossRef
108.
Zurück zum Zitat Zhang L, Hu X, Wang Z, Sun F, Dorrell DG (2018) A review of supercapacitor modeling, estimation, and applications: a control/management perspective. Renew Sustain Energy Rev 81:1868–1878CrossRef Zhang L, Hu X, Wang Z, Sun F, Dorrell DG (2018) A review of supercapacitor modeling, estimation, and applications: a control/management perspective. Renew Sustain Energy Rev 81:1868–1878CrossRef
109.
Zurück zum Zitat Bhadra S, Tan DSY, Thomson DJ, Freund MS, Bridges GE (2013) A wireless passive sensor for temperature compensated remote pH monitoring. IEEE Sens J 13:2428–2436CrossRef Bhadra S, Tan DSY, Thomson DJ, Freund MS, Bridges GE (2013) A wireless passive sensor for temperature compensated remote pH monitoring. IEEE Sens J 13:2428–2436CrossRef
110.
Zurück zum Zitat Chiang JL, Jan SS, Chou JC, Chen YC (2001) Study on the temperature effect, hysteresis and drift of pH-ISFET devices based on amorphous tungsten oxide. Sens Actuators B 76:624–628CrossRef Chiang JL, Jan SS, Chou JC, Chen YC (2001) Study on the temperature effect, hysteresis and drift of pH-ISFET devices based on amorphous tungsten oxide. Sens Actuators B 76:624–628CrossRef
111.
Zurück zum Zitat Steeves MM (2011) Electronic transport properties of ruthenium and ruthenium dioxide thin films. Electron Theses Diss 262:187 Steeves MM (2011) Electronic transport properties of ruthenium and ruthenium dioxide thin films. Electron Theses Diss 262:187
112.
Zurück zum Zitat Over H (2012) Surface chemistry of ruthenium dioxide in heterogeneous catalysis and electrocatalysis: from fundamental to applied research. Chem Rev 112:3356–3426CrossRef Over H (2012) Surface chemistry of ruthenium dioxide in heterogeneous catalysis and electrocatalysis: from fundamental to applied research. Chem Rev 112:3356–3426CrossRef
114.
Zurück zum Zitat Le Luu T, Kim J, Yoon J (2015) Physicochemical properties of RuO2 and IrO2 electrodes affecting chlorine evolutions. J Ind Eng Chem 21:400–404CrossRef Le Luu T, Kim J, Yoon J (2015) Physicochemical properties of RuO2 and IrO2 electrodes affecting chlorine evolutions. J Ind Eng Chem 21:400–404CrossRef
115.
Zurück zum Zitat Hu CC, Chang KH, Lin MC, Wu YT (2006) Design and tailoring of the nanotubular arrayed architecture of hydrous RuO2 for next generation supercapacitors. Nano Lett 6:2690–2695CrossRef Hu CC, Chang KH, Lin MC, Wu YT (2006) Design and tailoring of the nanotubular arrayed architecture of hydrous RuO2 for next generation supercapacitors. Nano Lett 6:2690–2695CrossRef
116.
Zurück zum Zitat Vonau W, Guth U (2006) pH monitoring: a review. J Solid State Electrochem 10:746–752CrossRef Vonau W, Guth U (2006) pH monitoring: a review. J Solid State Electrochem 10:746–752CrossRef
117.
Zurück zum Zitat Lonsdale W (2018) Development, manufacture and application of a solid-state pH sensor using ruthenium oxide. Edith Cowan University, Western Australia Lonsdale W (2018) Development, manufacture and application of a solid-state pH sensor using ruthenium oxide. Edith Cowan University, Western Australia
118.
Zurück zum Zitat Huang S, Jin Y, Su Z, Jin Q, Zhao J (2017) Performance of surface renewable pH electrodes based on RuO2-graphite-epoxy composites. Anal Methods 9:1650–1657CrossRef Huang S, Jin Y, Su Z, Jin Q, Zhao J (2017) Performance of surface renewable pH electrodes based on RuO2-graphite-epoxy composites. Anal Methods 9:1650–1657CrossRef
120.
Zurück zum Zitat Chalupczok S, Kurzweil P, Hartmann H (2018) Impact of various acids and bases on the voltammetric. Hindawi Int J Electrochem 2018:1697956 Chalupczok S, Kurzweil P, Hartmann H (2018) Impact of various acids and bases on the voltammetric. Hindawi Int J Electrochem 2018:1697956
121.
Zurück zum Zitat Kota PK (2016) Comparison of different metals as electrrodes for a flexible micro pH sensor. University of Texas, Austin Kota PK (2016) Comparison of different metals as electrrodes for a flexible micro pH sensor. University of Texas, Austin
122.
Zurück zum Zitat Lee Y, Kang M, Shim JH, Lee N, Baik JM, Lee Y, Lee C, Kim MH (2012) Growth of highly single crystalline IrO2 nanowires and their electrochemical applications. J Phys Chem C 116(34):18550–18556CrossRef Lee Y, Kang M, Shim JH, Lee N, Baik JM, Lee Y, Lee C, Kim MH (2012) Growth of highly single crystalline IrO2 nanowires and their electrochemical applications. J Phys Chem C 116(34):18550–18556CrossRef
123.
Zurück zum Zitat Kakooei S, Ismail MC, Ari-wahjoedi B (2013) An overview of pH sensors based on iridium oxide: fabrication and application. Int J Mater Sci Innov 1:62–72 Kakooei S, Ismail MC, Ari-wahjoedi B (2013) An overview of pH sensors based on iridium oxide: fabrication and application. Int J Mater Sci Innov 1:62–72
124.
Zurück zum Zitat Carmen C, Martinez M, Madrid RE, Felice CJ (2009) A pH sensor based on a stainless steel electrode electrodeposited with iridium oxide. IEEE Trans Educ 52:133–136CrossRef Carmen C, Martinez M, Madrid RE, Felice CJ (2009) A pH sensor based on a stainless steel electrode electrodeposited with iridium oxide. IEEE Trans Educ 52:133–136CrossRef
126.
Zurück zum Zitat Zimer AM, Lemos SG, Pocrifka LA, Mascaro LH, Pereira EC (2010) Needle-like IrO/Ag combined pH microelectrode. Electrochem Commun 12:1703–1705CrossRef Zimer AM, Lemos SG, Pocrifka LA, Mascaro LH, Pereira EC (2010) Needle-like IrO/Ag combined pH microelectrode. Electrochem Commun 12:1703–1705CrossRef
127.
Zurück zum Zitat Yu J, Khalil M, Liu N, Lee R (2015) Iridium oxide-based chemical sensor for in situ pH measurement of oilfield-produced water under subsurface conditions. Ionics (Kiel) 21:855–861 Yu J, Khalil M, Liu N, Lee R (2015) Iridium oxide-based chemical sensor for in situ pH measurement of oilfield-produced water under subsurface conditions. Ionics (Kiel) 21:855–861
130.
Zurück zum Zitat Steegstra P, Ahlberg E (2012) Influence of oxidation state on the pH dependence of hydrous iridium oxide films. Electrochim Acta 76:26–33CrossRef Steegstra P, Ahlberg E (2012) Influence of oxidation state on the pH dependence of hydrous iridium oxide films. Electrochim Acta 76:26–33CrossRef
131.
Zurück zum Zitat Choi SJ, Savagatrup S, Kim Y, Lang JH, Swager TM (2019) Precision pH sensor based on WO3 nanofiber-polymer composites and differential amplification. ACS Sensors 4:2593–2598CrossRef Choi SJ, Savagatrup S, Kim Y, Lang JH, Swager TM (2019) Precision pH sensor based on WO3 nanofiber-polymer composites and differential amplification. ACS Sensors 4:2593–2598CrossRef
132.
Zurück zum Zitat Mardare CC, Hassel AW (2019) Review on the versatility of tungsten oxide coatings. Phys Status Solidi 216:1–16 Mardare CC, Hassel AW (2019) Review on the versatility of tungsten oxide coatings. Phys Status Solidi 216:1–16
133.
Zurück zum Zitat Salazar P, Garcia-Garcia FJ, Yubero F, Gil-Rostra J, González-Elipe AR (2016) Characterization and application of a new pH sensor based on magnetron sputtered porous WO3 thin films deposited at oblique angles. Electrochim Acta 193:24–31CrossRef Salazar P, Garcia-Garcia FJ, Yubero F, Gil-Rostra J, González-Elipe AR (2016) Characterization and application of a new pH sensor based on magnetron sputtered porous WO3 thin films deposited at oblique angles. Electrochim Acta 193:24–31CrossRef
134.
Zurück zum Zitat Yamamoto K, Shi G, Zhou T, Xu F, Zhu M, Liu M, Kato T, Jin JY, Jin L (2003) Solid-state pH ultramicrosensor based on a tungstic oxide film fabricated on a tungsten nanoelectrode and its application to the study of endothelial cells. Anal Chim Acta 480:109–117CrossRef Yamamoto K, Shi G, Zhou T, Xu F, Zhu M, Liu M, Kato T, Jin JY, Jin L (2003) Solid-state pH ultramicrosensor based on a tungstic oxide film fabricated on a tungsten nanoelectrode and its application to the study of endothelial cells. Anal Chim Acta 480:109–117CrossRef
135.
Zurück zum Zitat Yang CC, Chen KY, Su YK (2019) TiO2 nano flowers based EGFET sensor for pH sensing. Coatings 9:1–7CrossRef Yang CC, Chen KY, Su YK (2019) TiO2 nano flowers based EGFET sensor for pH sensing. Coatings 9:1–7CrossRef
136.
Zurück zum Zitat Qiu J, Zhang S, Zhao H (2011) Recent applications of TiO2 nanomaterials in chemical sensing in aqueous media. Sens Actuators B 160:875–890CrossRef Qiu J, Zhang S, Zhao H (2011) Recent applications of TiO2 nanomaterials in chemical sensing in aqueous media. Sens Actuators B 160:875–890CrossRef
137.
Zurück zum Zitat Bao SJ, Li CM, Zang JF, Cui XQ, Qiao Y, Guo J (2008) New nanostructured TiO2 for direct electrochemistry and glucose sensor applications. Adv Funct Mater 18:591–599CrossRef Bao SJ, Li CM, Zang JF, Cui XQ, Qiao Y, Guo J (2008) New nanostructured TiO2 for direct electrochemistry and glucose sensor applications. Adv Funct Mater 18:591–599CrossRef
138.
Zurück zum Zitat Liao Y, Chou J (2009) Preparation and characterization of the titanium dioxide thin films used for pH electrode and procaine drug sensor by sol–gel method. Mater Chem Phys 114:542–548CrossRef Liao Y, Chou J (2009) Preparation and characterization of the titanium dioxide thin films used for pH electrode and procaine drug sensor by sol–gel method. Mater Chem Phys 114:542–548CrossRef
139.
Zurück zum Zitat Kwona DH, Cho BW, Kim CS, Sohn BK (1996) Effects of heat treatment on Ta2O5 sensing membrane for low drift and high sensitivity pH-ISFET. Sens Actuators B 34:441–445CrossRef Kwona DH, Cho BW, Kim CS, Sohn BK (1996) Effects of heat treatment on Ta2O5 sensing membrane for low drift and high sensitivity pH-ISFET. Sens Actuators B 34:441–445CrossRef
140.
Zurück zum Zitat Ito Y (2000) Long-term drift mechanism of Ta2O5 gate pH-ISFETs. Sens Actuators B 64:152–155CrossRef Ito Y (2000) Long-term drift mechanism of Ta2O5 gate pH-ISFETs. Sens Actuators B 64:152–155CrossRef
141.
Zurück zum Zitat Bahari N, Zain AM, Abdullah AZ, Sheng DBC, Othman M (2010) Study on pH sensing properties of RF magnetron sputtered tantalum pentoxide (Ta2O5) thin film. In: IEEE international conference on semiconductor electronics proceedings, ICSE, pp 76–78 Bahari N, Zain AM, Abdullah AZ, Sheng DBC, Othman M (2010) Study on pH sensing properties of RF magnetron sputtered tantalum pentoxide (Ta2O5) thin film. In: IEEE international conference on semiconductor electronics proceedings, ICSE, pp 76–78
142.
Zurück zum Zitat Schöning MJ, Brinkmann D, Rolka D, Demuth C, Poghossian A (2005) CIP (cleaning-in-place) suitable “non-glass” pH sensor based on a Ta2O5-gate EIS structure. Sens Actuators B 111–112:423–429CrossRef Schöning MJ, Brinkmann D, Rolka D, Demuth C, Poghossian A (2005) CIP (cleaning-in-place) suitable “non-glass” pH sensor based on a Ta2O5-gate EIS structure. Sens Actuators B 111–112:423–429CrossRef
143.
Zurück zum Zitat Sheng-joue Y, Wei-Lun T (2019) Wireless zinc oxide based pH sensor system. J Electrochem Soc 166:3047–3050CrossRef Sheng-joue Y, Wei-Lun T (2019) Wireless zinc oxide based pH sensor system. J Electrochem Soc 166:3047–3050CrossRef
144.
Zurück zum Zitat Savita C, Ahmad U, Bhasin KK, Sotirios B (2018) Chemical sensing applications of ZnO nanomaterials savita. Materials (Basel) 11(2):287CrossRef Savita C, Ahmad U, Bhasin KK, Sotirios B (2018) Chemical sensing applications of ZnO nanomaterials savita. Materials (Basel) 11(2):287CrossRef
145.
Zurück zum Zitat Scandurra A, Bruno E, Condorelli GG, Grimaldi MG, Mirabella S (2019) Microscopic model for pH sensing mechanism in zinc-based nanowalls. Sens Actuators B 296:126614CrossRef Scandurra A, Bruno E, Condorelli GG, Grimaldi MG, Mirabella S (2019) Microscopic model for pH sensing mechanism in zinc-based nanowalls. Sens Actuators B 296:126614CrossRef
146.
Zurück zum Zitat Shetti NP, Bukkitgar SD, Raghava K, Venkata C, Aminabhavi TM (2019) ZnO-based nanostructured electrodes for electrochemical sensors and biosensors in biomedical applications. Biosens Bioelectron 141:111417CrossRef Shetti NP, Bukkitgar SD, Raghava K, Venkata C, Aminabhavi TM (2019) ZnO-based nanostructured electrodes for electrochemical sensors and biosensors in biomedical applications. Biosens Bioelectron 141:111417CrossRef
148.
Zurück zum Zitat Fulati A, Ali SMU, Muhammad R, Gul A, Omer N, Magnus W (2009) Miniaturized pH sensors based on zinc oxide. Sensors 9(11):8911–8923CrossRef Fulati A, Ali SMU, Muhammad R, Gul A, Omer N, Magnus W (2009) Miniaturized pH sensors based on zinc oxide. Sensors 9(11):8911–8923CrossRef
Metadaten
Titel
Low-Temperature Processed Metal Oxides and Ion-Exchanging Surfaces as pH Sensor
verfasst von
Cyril Oluchukwu Ugwuoke
Philips Chidubem Tagbo
Onyeka Stanislaus Okwundu
Chukwujekwu Augustine Okaro
Sabastine Ezugwu
Fabian I. Ezema
Copyright-Jahr
2021
DOI
https://doi.org/10.1007/978-3-030-68462-4_29

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