A Biomimetic Single‐Atom Nanozyme With a Substrate Pocket for Accurate and Continuous Sweat Glucose Monitoring

X Xiaoyan Wang (Key Laboratory of Material Chemistry for Energy Conversion and Storage Ministry of Education, Hubei Key Laboratory of Material Chemistry and Service Failure, School of Chemistry and Chemical Engineering) X Xiaohan Wang X Xinyan Wang H Han Wen F Fulan Li (Department of Chemistry Capital Normal University Beijing China) S Siqing Wang (State Key Laboratory of Herbage Improvement and Grassland Agro-ecosystems, College of Ecology, Lanzhou University) Z Zhengdi Wang (Experimental Center of Advanced Materials School of Materials Science & Engineering Beijing Institute of Technology Beijing China) K Kangxi Cao (Department of Neurosurgery Peking University Third Hospital Beijing China) J Jun Zhang N Ningning Song (College of Chemistry) S Sijie Yin (School of Materials and Physics, China University of Mining and Technology 1 , Xuzhou 221116,) M Minmin Liang (Experimental Center of Advanced Materials, School of Materials Science & Engineering)

Abstract

ABSTRACT Wearable non‐invasive glucose sensors are revolutionizing diabetic management by enabling real‐time monitoring and personalized care. However, their widespread adoption has been limited by the intrinsic instability and high cost of natural glucose oxidase (GOx). Although nanozymes offer a more robust alternative, their lack of substrate specificity is a major challenge. Herein, a manganese‐based tannic acid single‐atom nanozyme (TA‐Mn SA) with a dual biomimetic architecture was developed. It features atomically dispersed Mn catalytic sites embedded within a tannic acid‐derived molecular pocket tailored for selective glucose recognition. This engineered enzyme mimic exhibits exceptional catalytic efficiency and substrate selectivity. The origin of this selectivity and the catalytic cycle were elucidated through both experimental data and density functional theory calculations. When integrated into a wearable sweat sensor, the TA‐Mn SA nanozyme reliably tracked blood glucose levels in human trials, capturing personalized metabolic dynamics during fasting, feeding, and exercise. This design is inherently compatible with scalable, low‐cost manufacturing, paving the way for a new era of accessible continuous glucose monitoring.

Article Details

Volume / Issue Vol. 38, Issue 43
Published August 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (12)

X

Xiaoyan Wang

Key Laboratory of Material Chemistry for Energy Conversion and Storage Ministry of Education, Hubei Key Laboratory of Material Chemistry and Service Failure, School of Chemistry and Chemical Engineering

X

Xiaohan Wang

X

Xinyan Wang

H

Han Wen

F

Fulan Li

Department of Chemistry Capital Normal University Beijing China

S

Siqing Wang

State Key Laboratory of Herbage Improvement and Grassland Agro-ecosystems, College of Ecology, Lanzhou University

Z

Zhengdi Wang

Experimental Center of Advanced Materials School of Materials Science & Engineering Beijing Institute of Technology Beijing China

K

Kangxi Cao

Department of Neurosurgery Peking University Third Hospital Beijing China

J

Jun Zhang

N

Ningning Song

College of Chemistry

S

Sijie Yin

School of Materials and Physics, China University of Mining and Technology 1 , Xuzhou 221116,

M

Minmin Liang

Experimental Center of Advanced Materials, School of Materials Science & Engineering