(201a) IrO2 Nanopore MEA for Highly Efficient Oxygen Evolution Electrocatalyst in SPE | AIChE

(201a) IrO2 Nanopore MEA for Highly Efficient Oxygen Evolution Electrocatalyst in SPE

Authors 

Yan, C. - Presenter, Guangzhou Institute of Energy Conversion, Chinese Academy of Sciences
Lu, Z. X., Guangzhou Institute of Energy Conversion, Chinese Academy of Sciences
Shi, Y., Guangzhou Institute of Energy Conversion, Chinese Academy of Sciences
IrO2 is a great candidate of anode electrode for its high OER activity and good stability. However, the high price of Ir hinders its extensive application1. In this work, IrO2 nanopore structure was synthesized with anodized TiO2 (ATO) template. Most of reported works used ATO template prepared in organic solution, which had tiny or no gaps between the tubes and resulted in nanowire or nanotube structure of catalyst2-4, High aspect ratio nanowire or nanotube may tend to crack during solid polymer electrolyzer (SPE) assembling. In contrast, ATO template synthesized in HF-H3PO4 aqueous solution showed well-separated tubes5 and IrO2 could be electrodeposited on the external tube wall to form nanopore structure with large surface area, high oxygen evolution reaction (OER) activity and good mechanical property. The pore diameter was controlled by applying different voltage. Cyclic voltammetry and galvanostatic method was used to deposit IrO2 on the template. A membrane electrode assemble (MEA) for SPE was fabricated by hot-press method with IrO2nanopore catalyst and Nafion membrane follow by acid treatment to remove the template.

Reference:

1.Reier, T.; Teschner, D.; Lunkenbein, T.; Bergmann, A.; Selve, S.; Kraehnert, R.; Schloegl, R.; Strasser, P. J Electrochem Soc 2014, 161, (9), F876-F882.

2.Shan, R.; Zhang, Z.; Kan, M.; Zhang, T.; Zan, Q.; Zhao, Y. International Journal of Hydrogen Energy 2015, 40, (41), 14279-14283.

3.Wang, D.; Yu, B.; Wang, C.; Zhou, F.; Liu, W. Advanced Materials 2009, 21, (19), 1964-1967.

4.Zhang, L.; Shao, Z.-G.; Yu, H.; Wang, X.; Yi, B. Journal of Electroanalytical Chemistry 2013, 688, 262-268.

5.Bauer, S.; Kleber, S.; Schmuki, P. Electrochemistry Communications 2006, 8, (8), 1321-1325.

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