Interface-Regulated Humidity-Sensing Transparent Flexible Film: Antibacterial Properties Facilitate Human–Computer Interaction and Health Monitoring

During periods of high incidence of infectious diseases, non-contact wearable intelligent humidity sensors with both excellent antibacterial properties and superior sensing performance are particularly critical. Possessing superior transparency, flexibility, and antibacterial properties, this film enables precise humidity monitoring and effectively suppresses the proliferation of pathogenic bacteria. Moreover, it can adapt well to the deformation of electronic devices without damaging their surface morphology and aesthetic appearance. In this study, an interface regulation strategy was employed: a multi-network synergy mechanism was constructed among 3-mercaptopropyltrimethoxysilane (MPTMS), cellulose nanofibers (TOCNF), polyvinyl alcohol (PVA), perovskite (Cs2SnCl6), and zinc oxide (ZnO). A high-performance cellulose-based humidity sensor (S-CPCZ) was successfully prepared. This sensor exhibits a detection range of 11-95% RH, a response/recovery time reaches 2 s/4 s, a maximum sensitivity of 3.42 × 106 Ω/%RH, a hysteresis of less than 1%, and long-term stability exceeding 200 days. It can quickly capture fluctuations in respiratory humidity and in the humidity of the microenvironment on the body surface. This material exhibits high transparency and excellent flexibility, which enables it to withstand slight deformations from human behaviors. In addition, its remarkable antibacterial performance can greatly inhibit microbial growth under humid conditions. The S-CPCZ sensor can effectively overcome the limitations of conventional non-contact humidity sensors in practical scenarios, exhibiting promising application prospects in non-contact human-computer interaction as well as sports and health monitoring.

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Publication Details

Journal
ACS Applied Materials & Interfaces
Published
2026-09-29
DOI
https://doi.org/10.1021/acsami.6c16733
Primary Topic
Gas Sensing Nanomaterials and Sensors
Type
article
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article

Interface-Regulated Humidity-Sensing Transparent Flexible Film: Antibacterial Properties Facilitate Human–Computer Interaction and Health Monitoring

Guigan Fang, 叶晓歌, Ning Ma, Boyue Liu et al.
ACS Applied Materials & Interfaces
Gas Sensing Nanomaterials and Sensors
article

Interface-Regulated Humidity-Sensing Transparent Flexible Film: Antibacterial Properties Facilitate Human–Computer Interaction and Health Monitoring

Guigan Fang, 叶晓歌, Ning Ma, Boyue Liu, Yihao Luan, Jie Li, Jing Gao, Mingzhe Shao, Yutian Wang, Jinwei Zhang, Xinhui Lu
article en

Abstract

During periods of high incidence of infectious diseases, non-contact wearable intelligent humidity sensors with both excellent antibacterial properties and superior sensing performance are particularly critical. Possessing superior transparency, flexibility, and antibacterial properties, this film enables precise humidity monitoring and effectively suppresses the proliferation of pathogenic bacteria. Moreover, it can adapt well to the deformation of electronic devices without damaging their surface morphology and aesthetic appearance. In this study, an interface regulation strategy was employed: a multi-network synergy mechanism was constructed among 3-mercaptopropyltrimethoxysilane (MPTMS), cellulose nanofibers (TOCNF), polyvinyl alcohol (PVA), perovskite (Cs2SnCl6), and zinc oxide (ZnO). A high-performance cellulose-based humidity sensor (S-CPCZ) was successfully prepared. This sensor exhibits a detection range of 11-95% RH, a response/recovery time reaches 2 s/4 s, a maximum sensitivity of 3.42 × 106 Ω/%RH, a hysteresis of less than 1%, and long-term stability exceeding 200 days. It can quickly capture fluctuations in respiratory humidity and in the humidity of the microenvironment on the body surface. This material exhibits high transparency and excellent flexibility, which enables it to withstand slight deformations from human behaviors. In addition, its remarkable antibacterial performance can greatly inhibit microbial growth under humid conditions. The S-CPCZ sensor can effectively overcome the limitations of conventional non-contact humidity sensors in practical scenarios, exhibiting promising application prospects in non-contact human-computer interaction as well as sports and health monitoring.

ACS Applied Materials & Interfaces
Tianjin University of Science and Technology (CN), Harbin Engineering University (CN), Tianjin Chengjian University (CN), Chinese Academy of Forestry (CN)
Openalex Percentile: Top 21%
Gas Sensing Nanomaterials and Sensors
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