Synergistic Bulk and Surface Engineering for Expeditious and Durable Reversible Protonic Ceramic Electrochemical Cells Air Electrode

Author:

Chen Xi1ORCID,Yu Na1ORCID,Song Yufei2,Liu Tong1,Xu Hengyue3ORCID,Guan Daqin1,Li Zheng1ORCID,Huang Wei‐Hsiang4,Shao Zongping5ORCID,Ciucci Francesco2ORCID,Ni Meng1ORCID

Affiliation:

1. Department of Building and Real Estate Research Institute for Sustainable Urban Development (RISUD) and Research Institute for Smart Energy (RISE) The Hong Kong Polytechnic University Hung Hom Kowloon Hong Kong 999077 China

2. Department of Mechanical and Aerospace Engineering The Hong Kong University of Science and Technology Clear Water Bay Hong Kong 999077 China

3. Institute of Biopharmaceutical and Health Engineering Tsinghua Shenzhen International Graduate School Tsinghua University Shenzhen 518055 China

4. National Synchrotron Radiation Research Center (NSRRC) Hsinchu 30076 Taiwan

5. WA School of Mines: Minerals Energy and Chemical Engineering (WASM‐MECE) Curtin University Perth WA 6845 Australia

Abstract

AbstractReversible protonic ceramic electrochemical cells (R‐PCECs) offer the potential for high‐efficiency power generation and green hydrogen production at intermediate temperatures. However, the commercial viability of R‐PCECs is hampered by the sluggish kinetics of the oxygen reduction reaction (ORR) and oxygen evolution reaction (OER) within conventional air electrodes operating at reduced temperatures. To address this challenge, this work introduces a novel approach based on the simultaneous optimization of bulk‐phase metal‐oxygen bonds and in‐situ formation of a metal oxide nano‐catalyst surface modification. This strategy is designed to expedite the ORR/OER electrocatalytic activity of air electrodes exhibiting triple (O2−, H+, e) conductivity. Specifically, this engineered air electrode nanocomposite‐Ba(Co0.4Fe0.4Zr0.1Y0.1)0.95Ni0.05F0.1O2.9‐δ demonstrates remarkable ORR/OER catalytic activity and exceptional durability in R‐PCECs. This is evidenced by significantly improved peak power density from 626 to 996 mW cm−2 and highly stable reversibility over a 100‐h cycling period. This research offers a rational design strategy to achieve high‐performance R‐PCEC air electrodes with superior operational activity and stability for efficient and sustainable energy conversion and storage.

Funder

Research Grants Council, University Grants Committee

Basic and Applied Basic Research Foundation of Guangdong Province

National Natural Science Foundation of China

Publisher

Wiley

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