Cell‐Like Portable Biologics‐Free Sensors for Stress Diagnostics

ABSTRACT Mental health is a pressing and widespread global concern, necessitating accessible, reliable and cost‐effective tools for its ongoing monitoring and effective management. Herein, a portable “molecule‐probe” platform is presented that integrates a specific chemical reaction within a hydrogel microreactor with n ‐type semiconductor doping for signal amplification. This biologics‐free sensing platform enables rapid, sensitive cortisol detection, a key stress biomarker, with superior response time‐selectivity compared to conventional antibody‐, aptamer‐, or chemical‐based detection systems. The specific chemical reaction ensures over 50‐fold selectivity for cortisol against other biochemicals including cholesterol and glucose. Utilizing non‐invasive saliva‐based sampling and a biodegradable hydrogel matrix, the device offers low post‐waste and high cost‐effectiveness. With a short diagnosis time (∼ 8 min) and low production cost (∼ 7 dollars per unit, projected to drop to 4 dollars at scale), the portable sensor is particularly well‐suited for frequent, point‐of‐care applications in resource‐limited or decentralized healthcare settings. By eliminating costly biological recognition elements such as antibodies or aptamers and long diagnosis time, this work introduces a new design paradigm for sustainable biochemical sensing, enhancing accessibility to chronic stress monitoring and mental health assessment across socio‐economic boundaries.

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Publication Details

Journal
Advanced Functional Materials
Published
2026-08-25
DOI
https://doi.org/10.1002/adfm.77967
Primary Topic
Stress Responses and Cortisol
Type
article
Field-Weighted Citation Impact
0.00

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article

Cell‐Like Portable Biologics‐Free Sensors for Stress Diagnostics

Xiao‐Qiao Wang, Ghim Wei Ho, Xinglong Pan, Wei Li Ong et al.
Advanced Functional Materials
Stress Responses and Cortisol
article

Cell‐Like Portable Biologics‐Free Sensors for Stress Diagnostics

Xiao‐Qiao Wang, Ghim Wei Ho, Xinglong Pan, Wei Li Ong, Xiaohong Liu, Yu Fang, Chang Liu
article en

Abstract

ABSTRACT Mental health is a pressing and widespread global concern, necessitating accessible, reliable and cost‐effective tools for its ongoing monitoring and effective management. Herein, a portable “molecule‐probe” platform is presented that integrates a specific chemical reaction within a hydrogel microreactor with n ‐type semiconductor doping for signal amplification. This biologics‐free sensing platform enables rapid, sensitive cortisol detection, a key stress biomarker, with superior response time‐selectivity compared to conventional antibody‐, aptamer‐, or chemical‐based detection systems. The specific chemical reaction ensures over 50‐fold selectivity for cortisol against other biochemicals including cholesterol and glucose. Utilizing non‐invasive saliva‐based sampling and a biodegradable hydrogel matrix, the device offers low post‐waste and high cost‐effectiveness. With a short diagnosis time (∼ 8 min) and low production cost (∼ 7 dollars per unit, projected to drop to 4 dollars at scale), the portable sensor is particularly well‐suited for frequent, point‐of‐care applications in resource‐limited or decentralized healthcare settings. By eliminating costly biological recognition elements such as antibodies or aptamers and long diagnosis time, this work introduces a new design paradigm for sustainable biochemical sensing, enhancing accessibility to chronic stress monitoring and mental health assessment across socio‐economic boundaries.

Advanced Functional Materials
National University of Singapore (SG), University of Groningen (NL), Soochow University (CN)
Agency for Science, Technology and Research, Ministry of Education - Singapore
Openalex Percentile: Top 11%
Stress Responses and Cortisol
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