材料科学
兴奋剂
激发
杰纳斯
光电子学
纳米技术
电气工程
工程类
作者
Bing Yu,Zhao Song,Hongtao Jiang,Xiaoyi Xu,Zhongzheng Yu,Tingting Zhou,Tong Zhang
标识
DOI:10.1002/adfm.202417599
摘要
Abstract Water competitive adsorption and limited reaction sites on the micro‐scale sensing area of micro‐electro‐mechanical system (MEMS) sensors are two bottleneck problems that restrict the detection of trace indoor polluted gases, leading to drifting and weak signals. To address this, a “duet‐insurance” sensing strategy is proposed to protect and amplify the sensing signal. For the first‐level protection, the well‐designed double‐layer structure consisting of Janus TpMa covalent organic framework (COF)/Eu‐doped α‐Fe 2 O 3 can resist diffusion of water molecules and facilitate the electron transfer from formaldehyde (CH 2 O) to sensing layers, benefiting from the outer hydrophobic character of Janus TpMa and the strong CH 2 O adsorption capacity of Eu‐doped Fe 2 O 3 . For the second‐level amplification, the unique variable temperature excitation facilitates the deep penetration of CH 2 O into the active sites across COF layers, enabling signal amplification through thermally actuated carrier modulation. The sensor demonstrates high sensing ability to the CH 2 O, with an ultra‐low limit of detection of 794 ppt. Leveraging the novel sensing strategy, a multi‐functional, visual sensing system is designed to identify multi‐indoor pollution gases by feature signal encoding and color mapping, showcasing the promising potential for MEMS sensors based on Janus TpMa COF/Eu‐doped α‐Fe 2 O 3 materials.
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