Graphitic C <sub>6</sub> N <sub>6</sub> ‐Supported Dual Cu/Zn Single‐Atom Nanozyme Mimicking Allosteric Regulation for Intelligent Switching Biosensing

Q Qing Hong Y Yuanjie Ma (Jiangxi Province Key Laboratory of Porous Functional Materials, College of Chemistry and Chemical Engineering Jiangxi Normal University Nanchang 330022 China) C Caixia Zhu (Qingdao Institute of Bioenergy and Bioprocess Technology) K Kaiyuan Wang (State Key Laboratory of Medicine Chemistry Biology, College of Chemistry) H Hong Yang (The First Affiliated Hospital of Air Force Military Medical University Xi’an China) K Kaiqing Wu (Jiangsu Engineering Laboratory of Smart Carbon-Rich Materials and Device, Jiangsu Province Hi-Tech Key Laboratory for Bio-Medical Research, School of Chemistry and Chemical Engineering, Medical School) Y Yanfei Shen (Jiangsu Engineering Laboratory of Smart Carbon-Rich Materials and Device, Jiangsu Province Hi-Tech Key Laboratory for Bio-Medical Research, School of Chemistry and Chemical Engineering, Medical School) S Songqin Liu (School of Chemistry and Chemical Engineering) X Xuejiao J. Gao (College of Chemistry and Materials) Y Yuanjian Zhang (School of Chemistry and Chemical Engineering)

Abstract

Abstract Self‐adaptability is highly envisioned for artificial devices such as robots with chemical noses. To this end, seeking catalysts with reversibly switchable functions is promising but generally hampered by mismatched specific valence state of active centers for a certain type of catalytic activity. Herein, we report a graphitic C 6 N 6 ‐supported dual Cu/Zn single‐atom nanozyme (Cu/Zn‐C 6 N 6 ) with switchable functions triggered by light irradiation. Cu/Zn‐C 6 N 6 exhibited highly efficient distinctive superoxide dismutase (SOD)‐ and peroxidase‐like (POD) activity under dark and light, respectively. Moreover, such switch between SOD‐ and POD‐like activities were reversible by alternating dark and light irradiation with an efficiency more than 90%. The comprehensive experimental and TD‐DFT calculations disclosed that both illumination and the Cu/Zn doping ratio modulate the reduction potential (φ red ) by altering the potential energy surface and frontier orbital energies, thereby fine‐tuning the SOD activity, making distinctive SOD‐ and POD‐like activities originated from the same active center (Cu‐N x ) but with different valence states, triggered by photoreduction. As a proof‐of‐concept application, Cu/Zn‐C 6 N 6 was further confined to a microfluidic chip and applied to an intelligent single‐interface biosensor with reversibly switched ability in detecting xanthine and glucose in vitro.

Article Details

Volume / Issue Vol. 65, Issue 1
Published January 02, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (10)

Q

Qing Hong

Y

Yuanjie Ma

Jiangxi Province Key Laboratory of Porous Functional Materials, College of Chemistry and Chemical Engineering Jiangxi Normal University Nanchang 330022 China

C

Caixia Zhu

Qingdao Institute of Bioenergy and Bioprocess Technology

K

Kaiyuan Wang

State Key Laboratory of Medicine Chemistry Biology, College of Chemistry

H

Hong Yang

The First Affiliated Hospital of Air Force Military Medical University Xi’an China

K

Kaiqing Wu

Jiangsu Engineering Laboratory of Smart Carbon-Rich Materials and Device, Jiangsu Province Hi-Tech Key Laboratory for Bio-Medical Research, School of Chemistry and Chemical Engineering, Medical School

Y

Yanfei Shen

Jiangsu Engineering Laboratory of Smart Carbon-Rich Materials and Device, Jiangsu Province Hi-Tech Key Laboratory for Bio-Medical Research, School of Chemistry and Chemical Engineering, Medical School

S

Songqin Liu

School of Chemistry and Chemical Engineering

X

Xuejiao J. Gao

College of Chemistry and Materials

Y

Yuanjian Zhang

School of Chemistry and Chemical Engineering