Scholay

学术搜索 · AI 审稿 · LaTeX 协作

Room-Temperature Wearable Chemiresistor Based on a Flexible Inorganic Photoactive Anatase–Rutile TiO 2 /Yttria-Stabilized Zirconia Nanofiber Network

作者:Wanying Cheng, Xiaowei Li, Xiaowei Li, Chaohan Han, Yu Liu, Aoqun Xue, Haipeng Dong, Xinghua Li, Xinghua Li, Changlu Shao, Yichun Liu · 发表于:ACS Sensors · 年份:2025 · DOI:10.1021/acssensors.4c03380 · 被引用次数:15 · 研究领域:Gas Sensing Nanomaterials and Sensors、Conducting polymers and applications、Transition Metal Oxide Nanomaterials

Wearable gas sensors offer remarkable advantages in terms of portability and real-time monitoring, rendering them highly promising for various applications such as environmental detection, health monitoring, and early disease diagnosis. However, the most widely used oxide semiconductor gas sensors encounter substantial challenges in achieving mechanical flexibility and room-temperature gas detection due to their inherent rigidity, brittleness, and reliance on high operating temperatures. Herein, an all-inorganic wearable oxide semiconductor gas sensor is fabricated by depositing the anatase/rutile TiO 2 (TiO 2 -A/R) homojunction on a flexible yttria-stabilized zirconia (YSZ) nanofiber substrate using atomic layer deposition technology. The combination of the YSZ nanofiber and the ultrathin TiO 2 sensing layer (∼13 nm) endows the wearable sensor with tiny linear strains (0.55%) when subjected to a radius of curvature of 25 μm. As a result, the wearable inorganic YSZ/TiO 2 -A/R sensor can be folded multiple times without fracturing and maintain a stable electrical connectivity during cyclic bending. Furthermore, the utilization of photoactive TiO 2 homojunctions allows the sensor to be activated by UV light and operated at room temperature. The efficient separation efficiency of photogenerated carriers, which stems from the interfacial electric field of TiO 2 homojunctions, significantly enhances the sensor’s response, leading to a low detection limit of 0.15 ppm for acetone. I...