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基于结构修饰的聚集诱导发光分子微线特异性有机蒸汽探测器

Aggregation-Induced Emission Molecule Microwire-Based Specific Organic Vapor Detector through Structural Modification.

作者信息

Jiang Xiangyu, Yu Zhenwei, Ma Chao, Wang Dong, Wu Yuchen, Shi Ce, Li Yunqi, Pang Jinhui, Zhang Xiqi, Jiang Lei

机构信息

Research Institute of Frontier Science, Beihang University, Beijing 100191, China.

Beijing Advanced Innovation Center for Biomedical Engineering and Key Laboratory of Bio-inspired Smart Interfacial Science and Technology of Ministry of Education, School of Chemistry, Beihang University, Beijing 100191, China.

出版信息

ACS Appl Mater Interfaces. 2021 Mar 17;13(10):12501-12508. doi: 10.1021/acsami.0c22975. Epub 2021 Mar 8.

Abstract

An optical organic vapor sensor array based on colorimetric or fluorescence changes quantified by spectroscopy provides an efficient method for realizing rapid identification and detection of organic vapor, but improving the sensitivity of the optical organic vapor sensor is challenging. Here, AIE/polymer (AIE, ggregation-induced emission) composites into microwires arrays are fabricated as organic vapor sensors with specific recognition and high sensitivity for different vapors using the capillary-bridge-mediated assembly method. Such organic vapor sensor successfully detects organic vapor relying on a swelling-induced fluorescence change of the AIE/polymer composites, combating the unique property of AIE molecules and vapor absorption-induced polymer swelling. A series of AIE/polymer composites into microwires arrays with four different groups on the AIE molecule and four different side chains on the polymer is fabricated to detect four different organic vapors. The mechanism for improved sensitivity of the AIE/polymer composites microwires arrays sensors is the same because of the similar polarity between the group of AIE molecules and the vapor molecules. Molecular design of the side chains of the polymer and the groups of AIE molecules based on the polarity of the targeted vapor molecule can enhance the sensitivity of the sensors to the subparts per million level.

摘要

基于比色或荧光变化并通过光谱法定量的光学有机蒸汽传感器阵列,为实现有机蒸汽的快速识别和检测提供了一种有效方法,但提高光学有机蒸汽传感器的灵敏度具有挑战性。在此,利用毛细管桥介导的组装方法,将聚集诱导发光(AIE)/聚合物复合材料制成微丝阵列,作为对不同蒸汽具有特异性识别和高灵敏度的有机蒸汽传感器。这种有机蒸汽传感器依靠AIE/聚合物复合材料的溶胀诱导荧光变化成功检测有机蒸汽,利用了AIE分子的独特性质和蒸汽吸收诱导的聚合物溶胀。制备了一系列AIE分子上带有四个不同基团且聚合物上带有四个不同侧链的AIE/聚合物复合材料微丝阵列,以检测四种不同的有机蒸汽。由于AIE分子基团与蒸汽分子之间极性相似,AIE/聚合物复合材料微丝阵列传感器灵敏度提高的机制相同。基于目标蒸汽分子的极性对聚合物侧链和AIE分子基团进行分子设计,可将传感器的灵敏度提高到百万分之一水平。

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