Disordered Cu Sites in Amorphous Cu <sub>2</sub> Te Nanosheets Promote Electrocatalytic Acetylene Semi‐hydrogenation

Z Zhilin Xing W Wen Zhao (School of Materials Science and Engineering, China University of Petroleum (East China), Qingdao, China.) Y Yanan Deng D Diandong Lv X Xuan Liu (School of Energy and Power Engineering) C Chi Ma Q Qing Ma (DND-CAT, Synchrotron Research Center, Northwestern University, Evanston, Illinois 60208, United States) Z Zhixin Mao W Wei Huang Z Zi‐Qiang Rong (State Key Laboratory of Flexible Electronics (SoFE) Shaanxi Institute of Flexible Electronics (SIFE) Institute of Flexible Electronics (IFE) Northwestern Polytechnical University (NPU) Xi'an 710072 China) J Jian Zhang Y Yiyun Fang (Frontiers Science Center for Flexible Electronics (FSCFE), Shaanxi Institute of Flexible Electronics (SIFE) & Institute of Flexible Electronics (IFE), Northwestern Polytechnical University (NPU), 127 West Youyi Road, Xi’an 710072, China)

Abstract

Abstract Electrocatalytic acetylene semi‐hydrogenation offers a sustainable and energy‐efficient alternative to conventional thermocatalytic methods, yet remains challenged by competing side reactions, including hydrogen evolution, over‐hydrogenation, and carbon‐carbon coupling. Here, the transformation of 2D van der Waals crystalline Cu 2 Te nanosheets (c‐Cu 2 Te NSs) into oxygen‐doped amorphous analogues (a‐Cu 2 Te NSs) via controlled air calcination is reported. The resulting a‐Cu 2 Te NSs feature a disordered Cu coordination network and deliver an ethylene Faradaic efficiency of 91.7% at a high partial current density of 550 mA cm −2 , along with excellent stability, outperforming both c‐Cu 2 Te NSs and state‐of‐the‐art catalysts. Mechanism investigations reveal that structural amorphization drives the redistribution of interlayer Cu atoms and alters key electronic properties, including the density of states and the Cu d ‐band center, through Cu 3 d ‐O 2 p orbital hybridization. These effects increase the density of accessible Cu active sites, optimize adsorption energetics, accelerate interfacial water dissociation, and promote hydrogen accumulation, thereby effectively suppressing undesirable side reactions. This work highlights amorphous engineering as a powerful strategy for designing high‐performance electrocatalysts.

Article Details

Volume / Issue Vol. 37, Issue 43
Published October 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (12)

Z

Zhilin Xing

W

Wen Zhao

School of Materials Science and Engineering, China University of Petroleum (East China), Qingdao, China.

Y

Yanan Deng

D

Diandong Lv

X

Xuan Liu

School of Energy and Power Engineering

C

Chi Ma

Q

Qing Ma

DND-CAT, Synchrotron Research Center, Northwestern University, Evanston, Illinois 60208, United States

Z

Zhixin Mao

W

Wei Huang

Z

Zi‐Qiang Rong

State Key Laboratory of Flexible Electronics (SoFE) Shaanxi Institute of Flexible Electronics (SIFE) Institute of Flexible Electronics (IFE) Northwestern Polytechnical University (NPU) Xi'an 710072 China

J

Jian Zhang

Y

Yiyun Fang

Frontiers Science Center for Flexible Electronics (FSCFE), Shaanxi Institute of Flexible Electronics (SIFE) & Institute of Flexible Electronics (IFE), Northwestern Polytechnical University (NPU), 127 West Youyi Road, Xi’an 710072, China