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Electrospinning deposition of poly(acrylic acid): platinum/carbon catalyst ink to enhance polymer electrolyte membrane fuel cell performance

Published online by Cambridge University Press:  06 November 2019

Guan Hao Chen
Affiliation:
Department of Materials Science and Engineering, Stony Brook University, Stony Brook, NY11794, USA
Danielle Kelly
Affiliation:
Department of Materials Science and Engineering, Stony Brook University, Stony Brook, NY11794, USA
Audrey Shine
Affiliation:
Department of Materials Science and Engineering, Stony Brook University, Stony Brook, NY11794, USA
Zipei Liu
Affiliation:
Department of Materials Science and Engineering, Stony Brook University, Stony Brook, NY11794, USA
Likun Wang
Affiliation:
Department of Materials Science and Engineering, Stony Brook University, Stony Brook, NY11794, USA
Stoyan Bliznakov
Affiliation:
Department of Materials Science and Engineering, Stony Brook University, Stony Brook, NY11794, USA
Miriam Rafailovich*
Affiliation:
Department of Materials Science and Engineering, Stony Brook University, Stony Brook, NY11794, USA
*
Address all correspondence to Miriam Rafailovich at [email protected]
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Abstract

Polymer electrolyte membrane fuel cells (PEMFCs) provide a renewable source of energy through the redox reaction of hydrogen and oxygen gas; however, operation relies on a costly platinum catalyst layer. This study investigates how electrospun catalyst layers may be employed to increase the surface area:volume ratio for catalysis to optimize PEMFC performance. When preparing electrospinning solutions, several base polymers were evaluated in varying concentrations to optimize fiber formation, with poly(acrylic acid) found to be preferable at a 12 wt% concentration. Ultimately, PEMFCs with electrospun catalyst layers achieved a 108% increase in power output compared to those air-sprayed.

Type
Research Letters
Copyright
Copyright © Materials Research Society 2019

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Footnotes

These authors contributed equally to this work.

References

1.Mirjalili, M. and Zohoori, S.: Review for application of electrospinning and electrospun nanofibers technology in textile industry. J. Nanostruct. Chem. 6, 207213 (2016).10.1007/s40097-016-0189-yCrossRefGoogle Scholar
2.Zhao, C., Xin, Z., Aiyun, J., and Zhijuan, P.: Adhesion and protective properties of polyvinyl alcohol nanofibrous composite fabrics. J. Text. Inst 109, 12631269 (2018).10.1080/00405000.2018.1423899CrossRefGoogle Scholar
3.Huang, Z.-M., Zhang, Y.-Z., Kotaki, M., and Ramakrishna, S.: A review on polymer nanofibers by electrospinning and their applications in nanocomposites. Compos. Sci. Technol. 63, 22232253 (2003).CrossRefGoogle Scholar
4.Abidat, I., Morais, C., Pronier, S., Guignard, N., Comparot, J.D., Canaff, C., Nappron, T., Habrioux, A., Mamede, A.-S., Lamonier, J.-F., and Kokoh, K.B.: Effect of gradual reduction of graphene oxide on the CO tolerance of supported platinum nanoparticles. Carbon 111, 849858 (2017).10.1016/j.carbon.2016.10.050CrossRefGoogle Scholar
5.Bajon, R., Balaji, S., and Guo, S.M.: Electrospun Nafion nanofiber for proton exchange membrane fuel cell application. J. Fuel Cell Sci. Technol. 6, 031004 (2009).10.1115/1.3005577CrossRefGoogle Scholar
6.Snyder, J.D. and Elabd, Y.A.: Nafion® nanofibers and their effect on polymer electrolyte membrane fuel cell performance. J. Power Sources 186, 352392 (2008).Google Scholar
7.Choi, J., Kyung, M.L., Wycisk, R., Pintauro, P.N., and Mather, P.T.: Nanofiber network ion-exchange membranes. Macromolecules 41, 45694572 (2008).10.1021/ma800551wCrossRefGoogle Scholar
8.Tamura, T. and Kawakami, H.: Aligned electrospun nanofiber composite membranes for fuel cell electrolytes. Nanoletters 10, 13241328 (2010).CrossRefGoogle ScholarPubMed
9.Zhang, W. and Pintauro, P.N.: High-performance nanofiber fuel cell electrodes. Chem. Sustain. Commun. 4, 17531757 (2011).Google ScholarPubMed
10.Wang, X., Richey, F.W., Wujcik, K.H., Ventura, R., Mattson, K., and Elabd, Y.A.: Effect of polytetrafluoroethylene on ultra-low platinum loaded electrospun/electrosprayed electrodes in proton exchange membrane fuel cells. Electrochim. Acta 139, 217224 (2014).10.1016/j.electacta.2014.06.139CrossRefGoogle Scholar
11.Lee, K.M., Choi, J., Wycisk, R., Pintauro, P.N., and Mather, P.: Nafion nanofiber membranes. ECS Trans. 25, 14511458 (2009).10.1149/1.3210701CrossRefGoogle Scholar
12.Ballengee, J.B. and Pintauro, P.N.: Morphological control of electrospun Nafion nanofiber mats. J. Electrochem. Soc 158, B568B572 (2011).CrossRefGoogle Scholar
13.Chen, H., Snyder, J.D., and Elabd, Y.A.: Electrospinning and solution properties of Nafion and poly(acrylic acid). Macromolecules 41, 128135 (2008).10.1021/ma070893gCrossRefGoogle Scholar
14.Zhang, J.: PEM Fuel Cell Electrocatalysts and Catalyst Layers: Fundamentals and Applications (Springer-Verlag, London, 2008), pp. 9651002.10.1007/978-1-84800-936-3_21CrossRefGoogle Scholar
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