Dual‐Interface Nanopipette Sensor for Electrochemical Interferent Shielding

S Si‐Yu Tian (College of Chemistry and Molecular Sciences Wuhan University Wuhan China) R Rui‐Xue Gao (College of Chemistry and Molecular Sciences Wuhan University Wuhan 430072 China) Z Zi‐Qiang Du (College of Chemistry and Molecular Sciences Wuhan University Wuhan China) Y Yu‐Ting Qi (College of Chemistry and Molecular Sciences Wuhan University Wuhan 430072 China) Y Ying Chen F Fan Xia X Xin‐Wei Zhang (College of Chemistry and Molecular Sciences Wuhan University Wuhan China) W Wei‐Hua Huang (College of Chemistry and Molecular Sciences Wuhan University Wuhan China)

Abstract

Abstract Enzyme‐based sensors have been widely utilized for their superior selectivity. However, they cannot distinguish the same kind of redox mediators from different sources. Typically, both the H 2 O 2 produced in glucose (analyte) oxidation by glucose oxidase (GOD) and the endogenous H 2 O 2 (interferent) existing in the detection system can be simultaneously measured, causing inaccurate results in glucose detection. To address this long‐standing and inevitable obstacle, we proposed a new sensor design strategy, a dual‐interface nanopipette sensor (DINS), to shield against the interferent electrochemically. The DINS comprised an anti‐interference interface at the orifice of the nanopipette, and a sensing interface located at the inner wall with a certain distance from the orifice. Anti‐interference interface, functioning as an “electrochemical Faraday cage”, electrochemically eliminated the interferents with high efficiency while allowed the target species to pass through and be detected at the sensing interface. With the synergy of these two independent interfaces, the GOD‐modified DINS (GOD‐DINS) allowed the accurate detection of intracellular glucose with effectively eliminating endogenous H 2 O 2 , facilitating the quantitative study on the glucose metabolism inside single cells. Furthermore, this DINS configuration is expected to accurately quantify more substances, and reveal complex crosstalk interactions between multiple species in the physiological, pathological and pharmacological research.

Article Details

Volume / Issue Vol. 64, Issue 29
Published July 14, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (8)

S

Si‐Yu Tian

College of Chemistry and Molecular Sciences Wuhan University Wuhan China

R

Rui‐Xue Gao

College of Chemistry and Molecular Sciences Wuhan University Wuhan 430072 China

Z

Zi‐Qiang Du

College of Chemistry and Molecular Sciences Wuhan University Wuhan China

Y

Yu‐Ting Qi

College of Chemistry and Molecular Sciences Wuhan University Wuhan 430072 China

Y

Ying Chen

F

Fan Xia

X

Xin‐Wei Zhang

College of Chemistry and Molecular Sciences Wuhan University Wuhan China

W

Wei‐Hua Huang

College of Chemistry and Molecular Sciences Wuhan University Wuhan China