软件部署
可扩展性
无线传感器网络
计算机科学
微控制器
无线
能量收集
宽带
嵌入式系统
精准农业
相容性(地球化学)
跟踪(教育)
钥匙(锁)
环境监测
高效能源利用
纳米技术
结构健康监测
人类健康
材料科学
系统工程
领域(数学)
实时计算
障碍物
能量(信号处理)
电光传感器
太阳能
封装(网络)
热的
环境科学
工艺工程
近场通信
作者
Yun‐Haeng Cho,Kootak Hong,Jung Hwan Seo,Jae Han Chung,Jinho Lee,Sang‐Hyeon Nam,Sunwoo Lee,Jeong‐O Lee,Changui Ahn,Hyojung Kim,Jae Hyun Han,Gyu‐Li Kim,S. T. Ro,Jun Yeon Hwang,Hyeongyu Gim,Zion Park,Chil‐Hyoung Lee,Dongsu Kim,Kwangjae Lee,Young‐Seok Shim
标识
DOI:10.1002/advs.202518368
摘要
Conventional sensing platforms for plant health monitoring are often limited by high operating temperatures, rigid substrates, and poor compatibility with ambient, power-constrained, or biologically sensitive environments. These limitations hinder their integration into emerging platforms such as smart agriculture and plant-interfaced electronics, where mechanical flexibility, energy efficiency, and low thermal budgets are essential. This paper reports a scalable, thermally passive NO2 sensor based on light-activated 3D TiO2 nanoarchitectures. Fabricated via sequential glancing angle deposition, the highly ordered porous nanoarchitectures exhibit tunable broadband light scattering and defect-mediated sub-bandgap activation under ambient light. Integrated with a wireless microcontroller and mobile application, the sensor enables autonomous NO2 monitoring in real-world conditions. Field deployment on Mentha suaveolens plants demonstrates real-time tracking of gas-induced physiological stress, establishing practical ecological relevance. This platform overcomes the key limitations of conventional sensors, offering a structurally tunable, spectrally adaptive, and fabrication-scalable solution for light-powered, bio-integrated environmental monitoring.
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