Sensoring Layer Designed Strategies: Flexible Polyaniline Film With Multiple‐Microstructures for Multifunctional Sensing of Physical and Chemical Stimuli

材料科学 聚苯胺 纳米技术 纳米结构 检出限 图层(电子) 可穿戴计算机 湿度 光电子学 响应时间 纳米复合材料 相对湿度 可穿戴技术 生物传感器 纳米传感器 粘附 灵敏度(控制系统) 活动层 原位 电阻和电导 惰性 信号(编程语言) 逐层 传感器
作者
Mingqian Sheng,Mingyang Qiu,Ningjing Wang,Shuhuan Deng,Ziyang Du,Li Y,Tianchun Lang,Bitao Liu,Qinping Qiang,Yulin Hu,Wei Xiao,Zhongyan Gao
出处
期刊:Advanced Functional Materials [Wiley]
标识
DOI:10.1002/adfm.75592
摘要

ABSTRACT With the increasing demand for health monitoring, the early diagnosis of chronic kidney disease (CKD) faces challenges related to insufficient sensitivity, limited selectivity, and humidity interference in current detection methods. Breath sensors targeting ammonia (NH 3 ) have shown significant potential for early CKD diagnosis due to their excellent ability to analyze human breath. However, the rational design of the functional sensing layer—particularly concerning active sites and adhesion forces—remains a considerable challenge. This study developed a multifunctional wearable sensor based on polyaniline (PANI) featuring a bionic rose micro‐dome structure, fabricated via a modified in situ growth method. Owing to the superhydrophobic microstructured sensing layer with a contact angle of 108.6°, the sensor exhibits excellent humidity resistance and an expanded NH 3 contact area. The sensor demonstrates a remarkable 97.3% improvement in response to 100 ppm NH 3 , a low detection limit of 0.1 ppm, and high moisture resistance under 80% relative humidity. Clinical tests reveal its potential for breath monitoring in CKD patients, effectively distinguishing between varying disease stages with an accuracy of up to 91%. Furthermore, due to the specialized nanostructure modification providing strong adhesion, the sensor exhibits a pressure sensitivity of 0.7126 kPa − 1 and a broad detection range of 0–35 000 Pa, thereby enabling precise monitoring of subtle human movements and gestures. This research proposes a novel strategy for designing high‐performance, multifunctional flexible sensors based on PANI microstructures. This approach not only enhances the detection capability of trace NH 3 in complex humidity environments but also offers an innovative solution for the early screening and clinical monitoring of CKD, as well as for the development of multifunctional health monitoring systems.
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