Vacancy–Redox Coupling at Interface‐Engineered Heterostructures Enhances Reversible Energy Conversion in Protonic Ceramic Cells

S Shuanglin Zheng Y Yuqi Geng (School of Aerospace and Mechanical Engineering University of Oklahoma Norman OK USA) S Subrina Islam (Department of Chemical Engineering) N Nishya Mohamed Raseek A Anshu Kumari (School of Aerospace and Mechanical Engineering University of Oklahoma Norman OK USA) S Saroj Karki I Idris Temitope Bello (School of Aerospace and Mechanical Engineering University of Oklahoma Norman OK USA) J John W. Peters (Department of Chemistry and Biochemistry) C Chuancheng Duan (Department of Chemical Engineering) S Sooraj Patel (School of Aerospace and Mechanical Engineering University of Oklahoma Norman OK USA) I Iman Ghamarian (School of Aerospace and Mechanical Engineering University of Oklahoma Norman OK USA) Y Yingtao Liu (School of Aerospace and Mechanical Engineering University of Oklahoma Norman OK USA) Z Zongping Shao H Hanping Ding (School of Aerospace and Mechanical Engineering)

Abstract

ABSTRACT Achieving efficient and durable oxygen electrocatalysis in protonic ceramic cells (PCCs) demands precise control of defect chemistry and cation redox under steam. Here, we design a hierarchically engineered oxygen electrode comprising a three‐dimensional, mesh‐like PrNi 0 . 7 Co 0 . 3 O 3−δ (PNC) scaffold conformally integrated with a vacancy‐rich PrO x nanophase. This architecture extends the reactive zone while the PrO x – PNC interphase enables vacancy‐mediated redox coupling between Pr and Co, buffering local oxygen chemical potential and stabilizing the defect landscape during reversible operation. The enhanced activity is attributed to vacancy‐assisted steam activation and defect‐mediated oxygen surface exchange and is consistent with interfacial modulation of metal–oxygen covalency within an O 2p band center framework. The electrode delivers 1.75 W cm − 2 in fuel‐cell mode and 2.77 A cm − 2 at 1.3 V in electrolysis at 600°C, maintains >92% Faradaic efficiency, and shows minimal degradation over 200 h. Our results establish a general strategy for coupling hierarchical transport with chemically active, redox‐buffered interphases to achieve both high kinetics and durability in protonic electrochemical systems.

Article Details

Volume / Issue Vol. 65, Issue 21
Published May 18, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (14)

S

Shuanglin Zheng

Y

Yuqi Geng

School of Aerospace and Mechanical Engineering University of Oklahoma Norman OK USA

S

Subrina Islam

Department of Chemical Engineering

N

Nishya Mohamed Raseek

A

Anshu Kumari

School of Aerospace and Mechanical Engineering University of Oklahoma Norman OK USA

S

Saroj Karki

I

Idris Temitope Bello

School of Aerospace and Mechanical Engineering University of Oklahoma Norman OK USA

J

John W. Peters

Department of Chemistry and Biochemistry

C

Chuancheng Duan

Department of Chemical Engineering

S

Sooraj Patel

School of Aerospace and Mechanical Engineering University of Oklahoma Norman OK USA

I

Iman Ghamarian

School of Aerospace and Mechanical Engineering University of Oklahoma Norman OK USA

Y

Yingtao Liu

School of Aerospace and Mechanical Engineering University of Oklahoma Norman OK USA

Z

Zongping Shao

H

Hanping Ding

School of Aerospace and Mechanical Engineering