PdMoPtCoNi High Entropy Nanoalloy with d Electron Self‐Complementation‐Induced Multisite Synergistic Effect for Efficient Nanozyme Catalysis

Author:

Yang Xuewei1,Feng Jianxing1,Li Yuechun1,Zhu Wenxin1,Pan Yifan1,Han Yaru2,Li Zhonghong1,Xie Haijiao3,Wang Jianlong1,Ping Jianfeng4,Tang Wenzhi1ORCID

Affiliation:

1. College of Food Science and Engineering Northwest A&F University Yangling Shaanxi 712100 China

2. Department of Chemical Engineering Columbia University New York NY 10027 USA

3. Hangzhou Yanqu Information Technology Co., Ltd Hangzhou Zhejiang 310000 China

4. College of Biosystems Engineering and Food Science Zhejiang University Hangzhou Zhejiang 310058 China

Abstract

AbstractEngineering multimetallic nanocatalysts with the entropy‐mediated strategy to reduce reaction activation energy is regarded as an innovative and effective approach to facilitate efficient heterogeneous catalysis. Accordingly, conformational entropy‐driven high‐entropy alloys (HEAs) are emerging as a promising candidate to settle the catalytic efficiency limitations of nanozymes, attributed to their versatile active site compositions and synergistic effects. As proof of the high‐entropy nanozymes (HEzymes) concept, elaborate PdMoPtCoNi HEA nanowires (NWs) with abundant active sites and tuned electronic structures, exhibiting peroxidase‐mimicking activity comparable to that of natural horseradish peroxidase are reported. Density functional theory calculations demonstrate that the enhanced electron abundance of HEA NWs near the Fermi level (EF) is facilitated via the self‐complementation effect among the diverse transition metal sites, thereby boosting the electron transfer efficiency at the catalytic interface through the cocktail effect. Subsequently, the HEzymes are integrated with a portable electronic device that utilizes Internet of Things‐driven signal conversion and wireless transmission functions for point‐of‐care diagnosis to validate their applicability in digital biosensing of urinary biomarkers. The proposed HEzymes underscore significant potential in enhancing nanozymes catalysis through tunable electronic structures and synergistic effects, paving the way for reformative advancements in nano‐bio analysis.

Funder

Natural Science Basic Research Program of Shaanxi Province

Publisher

Wiley

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