Dual‐Proton Conductor for Fuel Cells with Flexible Operational Temperature

Author:

Li Wen1,Liu Wen1,Jia Wendi12,Zhang Jin1,Zhang Qi1,Zhang Zhenguo1,Zhang Jialin1,Li Yunqi1,Liu Yiyang1,Wang Haining1,Xiang, Yan1,Lu Shanfu1ORCID

Affiliation:

1. Beijing Key Laboratory of Bio‐inspired Energy Materials and Devices School of Energy and Power Engineering Beihang University Beijing 100191 P. R. China

2. State Power Investment Corporation Hydrogen Energy Company Co., Ltd. Beijing 102600 P. R. China

Abstract

AbstractThe properties of proton conductors determine the operating temperature range of fuel cells. Typically, phosphoric acid (PA) proton conductors exhibit excellent proton conductivity owing to their high proton dissociation and self‐diffusion abilities. However, at low temperatures or high current densities, water‐induced PA loss causes rapid degradation of cell performance. Maintaining efficient and stable proton conductivity within a flexible temperature range can significantly reduce the start‐up temperature of PA‐doped proton exchange membrane fuel cells. In this study, a dual‐proton conductor composed of an organic phosphonic acid (ethylenediamine tetramethylene phosphonic acid, EDTMPA) and an inorganic PA is developed for proton exchange membranes. The proposed dual‐proton conductor can operate within a flexible temperature range of 80–160 °C, benefiting from the strong interaction between EDTMPA and PA, and the enhanced proton dissociation. Fuel cells with the EDTMPA‐PA dual‐proton conductor showed excellent cell stability at 80 °C. In particular, under the high current density of 1.5 A cm−2 at 160 °C, the voltage decay rate of the fuel cell with the dual‐proton conductor is one‐thousandth of that of the fuel cell with PA‐only proton conductor, indicating excellent stability.

Funder

National Basic Research Program of China

National Natural Science Foundation of China

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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