Multiply Nano‐Twinned Copper as a “Dual‐Site Cooperative” Catalyst for Enhanced Electrocatalytic Nitrate Reduction to Ammonia

X Xuebiao Ji (Institute for Advanced Interdisciplinary Research (iAIR) School of Chemistry and Chemical Engineering University of Jinan Jinan 250022 P. R. China) R Riming Hu J Jiawei Li H Heng Zhao (State Key Laboratory of Chemical Reaction Dynamics) X Xin Liu K Kai Jiang (Department of Pharmacy, The First Affiliated Hospital of the University of Science and Technology of China, and State Key Laboratory of Precision and Intelligent Chemistry) H Hua Tan (College of Future Information Technology) Y Yuecheng Xiong (Department of Chemistry) Z Zhanxi Fan (Department of Chemistry) H Hong Liu M Man Huang (Key Laboratory of Multiple Organ Failure (Ministry of Education), Departments of Microbiology and General Intensive Care Unit of the Second Affiliated Hospital, Zhejiang University School of Medicine) W Weijia Zhou

Abstract

Abstract To advance the electrocatalytic nitrate reduction reaction (NIRR) to ammonia, it is essential to rationally regulate the kinetics of active hydrogen (H * ). Nevertheless, an in‐depth understanding of H * generation, transfer, and utilization remains elusive, which impedes exploring strategies for optimizing H * dynamics. In this study, a copper nanocrystalline is developed with a multiply nano‐twinned structure (MNTs‐Cu) using a “dual nonequilibrium” strategy to optimize H * dynamics and enhance NIRR performance. Experimental and theoretical studies show that MNTs‐Cu functions as a “dual‐site cooperative” catalyst, addressing the H * supply‐consumption balance to boost ammonia electrosynthesis. Specifically, the Cu sites are responsible for the activation of nitrate, while the nano‐twinned structure serves as an “active hydrogen hub” to facilitate the generation, transfer, and utilization of H * . The MNTs‐Cu catalyst achieves a high NH 3 yield of 112.03 mg h −1 cm −2 at −0.7 V vs RHE, and notably, it can continuously maintain a high FE NH3 of >99% within the high potential range from −0.7 to −0.9 V vs RHE. This work provides a novel pathway for optimizing H * behavior through structural engineering, offering insights for advancing NIRR and other hydrogenation reactions.

Article Details

Volume / Issue Vol. 38, Issue 7
Published February 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (12)

X

Xuebiao Ji

Institute for Advanced Interdisciplinary Research (iAIR) School of Chemistry and Chemical Engineering University of Jinan Jinan 250022 P. R. China

R

Riming Hu

J

Jiawei Li

H

Heng Zhao

State Key Laboratory of Chemical Reaction Dynamics

X

Xin Liu

K

Kai Jiang

Department of Pharmacy, The First Affiliated Hospital of the University of Science and Technology of China, and State Key Laboratory of Precision and Intelligent Chemistry

H

Hua Tan

College of Future Information Technology

Y

Yuecheng Xiong

Department of Chemistry

Z

Zhanxi Fan

Department of Chemistry

H

Hong Liu

M

Man Huang

Key Laboratory of Multiple Organ Failure (Ministry of Education), Departments of Microbiology and General Intensive Care Unit of the Second Affiliated Hospital, Zhejiang University School of Medicine

W

Weijia Zhou