Theory-guided design of S-doped Fe/Co dual-atom nanozymes for highly efficient oxidase mimics

Abstract

The advent of dual-atom nanozymes (DAzymes) featuring distinctive bimetallic active sites garnered significant attention, representing enhanced iterations of conventional single-atom nanozymes. The quest for an effective and universal strategy to modulate the catalytic activity of DAzymes posed a formidable challenge, yet few published reports addressed this. Herein, we designed and synthesized S-doped Fe/Co DAzymes (S-FeCo-NC) under theoretical guidance and revealed their excellent oxidase-like activity. Experimental and theoretical calculations indicated that the superior oxidase-like activity exhibited by S-FeCo-NC was attributed to the S-doping, which modulated the local electronic structure of the dual-atom active site. This modulation of the local electronic structure significantly optimizes oxygen adsorption energy, thereby accelerating the rate of enzyme-catalyzed reactions. As a proof-of-concept, this study integrated S-FeCo-NC with the cascade inhibition reaction of acetylcholinesterase (AChE) to devise a sensitive analytical platform for detecting organophosphorus pesticides. This study paved the way for elucidating the correlation between the local electronic structure of the active site and enzyme activity, offering novel methodologies and insights for the rational design of DAzymes.

Graphical abstract: Theory-guided design of S-doped Fe/Co dual-atom nanozymes for highly efficient oxidase mimics

Supplementary files

Article information

Article type
Edge Article
Submitted
12 May 2024
Accepted
11 Aug 2024
First published
16 Aug 2024
This article is Open Access

All publication charges for this article have been paid for by the Royal Society of Chemistry
Creative Commons BY license

Chem. Sci., 2024, Advance Article

Theory-guided design of S-doped Fe/Co dual-atom nanozymes for highly efficient oxidase mimics

H. Cheng, Y. Chen, M. Liu, H. Tao, L. Chen, F. Wang, L. Huang, J. Tang, T. Yang and R. Hu, Chem. Sci., 2024, Advance Article , DOI: 10.1039/D4SC03101F

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