Modulating Single‐Atom Pt Coordination for Enhanced Low‐Temperature Ammonia Fuel Cell Electrocatalysis

T Tong Wu X Xingyu Wang (Eastern Institute for Advanced Study, Ningbo Key Laboratory of All-Solid-State Battery, Zhejiang Key Laboratory of All-Solid-State Battery) Q Qin Yang (Department of Chemical and Biomolecular Engineering) B Bingqing Wang R Ruoou Yang (State Key Laboratory of Materials Processing and Die & Mould Technology, and School of Materials Science and Engineering) S Shin‐An Chen (National Synchrotron Radiation Research Center Hsinchu 30076 Taiwan) L Lo‐Yueh Chang (National Synchrotron Radiation Research Centre Hsinchu Taiwan) S Sibo Wang F Fuqiang Huang (Key Laboratory of Intelligent Creation for Extreme Energy Materials of Ministry of Education, School of Materials Science and Engineering and Zhang Jiang Institute for Advanced Study) Z Ziyun Wang Y Yanwei Lum (Department of Chemical and Biomolecular Engineering)

Abstract

Abstract Low‐temperature direct ammonia fuel cells (DAFCs) can be used for the on‐demand generation of clean electricity. However, such systems have low efficiency due to the kinetically sluggish ammonia oxidation reaction (AOR) and oxygen reduction reaction (ORR). Prior reports have largely focused on Pt‐based electrocatalysts, however, their high cost motivates the need for simultaneously increasing activity whilst reducing the metal loading. Here, the design of a bifunctional Pt single‐atom catalyst (SAC) is reported, with enhanced catalytic activities compared to commercial Pt/C for both reactions. Notably, by modulating the Pt SAC coordination, the optimal catalyst (Pt‐DG‐1) displayed a high AOR mass activity of 1.23 A mg Pt −1 and ORR mass activity of 7.98 A mg Pt −1 . This is then integrated into a DAFC as both the cathode and anode, achieving a peak power density of 21.8 mW cm −2 and low Pt mass loading of only 0.034 mg cm −2 . In situ shell‐isolated nanoparticle‐enhanced Raman spectroscopy (SHINERS) experiments on Pt‐DG‐1 indicate a lower * OH coverage under ORR conditions and suppressed formation of poisoning species * NO x under AOR conditions as additional reasons for its enhanced bifunctional catalytic activity. Importantly, the study demonstrates how SACs can be rationally designed for DAFC electrocatalysis.

Article Details

Volume / Issue Vol. 37, Issue 41
Published October 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (11)

T

Tong Wu

X

Xingyu Wang

Eastern Institute for Advanced Study, Ningbo Key Laboratory of All-Solid-State Battery, Zhejiang Key Laboratory of All-Solid-State Battery

Q

Qin Yang

Department of Chemical and Biomolecular Engineering

B

Bingqing Wang

R

Ruoou Yang

State Key Laboratory of Materials Processing and Die & Mould Technology, and School of Materials Science and Engineering

S

Shin‐An Chen

National Synchrotron Radiation Research Center Hsinchu 30076 Taiwan

L

Lo‐Yueh Chang

National Synchrotron Radiation Research Centre Hsinchu Taiwan

S

Sibo Wang

F

Fuqiang Huang

Key Laboratory of Intelligent Creation for Extreme Energy Materials of Ministry of Education, School of Materials Science and Engineering and Zhang Jiang Institute for Advanced Study

Z

Ziyun Wang

Y

Yanwei Lum

Department of Chemical and Biomolecular Engineering