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基于弹性有机晶体的荧光热传感

Fluorescence-based thermal sensing with elastic organic crystals.

作者信息

Di Qi, Li Liang, Miao Xiaodan, Lan Linfeng, Yu Xu, Liu Bin, Yi Yuanping, Naumov Panče, Zhang Hongyu

机构信息

State Key Laboratory of Supramolecular Structure and Materials, College of Chemistry, Jilin University, 130012, Changchun, China.

Smart Materials Lab, New York University Abu Dhabi, PO Box 129188, Abu Dhabi, UAE.

出版信息

Nat Commun. 2022 Sep 8;13(1):5280. doi: 10.1038/s41467-022-32894-w.

Abstract

Operation of temperature sensors over extended temperature ranges, and particularly in extreme conditions, poses challenges with both the mechanical integrity of the sensing material and the operational range of the sensor. With an emissive bendable organic crystalline material, here we propose that organic crystals can be used as mechanically robust and compliant fluorescence-based thermal sensors with wide range of temperature coverage and complete retention of mechanical elasticity. The exemplary material described remains elastically bendable and shows highly linear correlation with the emission wavelength and intensity between 77 K to 277 K, while it also transduces its own fluorescence in active waveguiding mode. This universal new approach expands the materials available for optical thermal sensing to a vast number of organic crystals as a new class of engineering materials and opens opportunities for the design of lightweight, organic fluorescence-based thermal sensors that can operate under extreme temperature conditions such as are the ones that will be encountered in future space exploration missions.

摘要

在扩展的温度范围内,特别是在极端条件下操作温度传感器,对传感材料的机械完整性和传感器的工作范围都构成了挑战。利用一种发射型可弯曲有机晶体材料,我们在此提出,有机晶体可作为机械坚固且柔顺的基于荧光的热传感器,具有广泛的温度覆盖范围,并能完全保持机械弹性。所描述的示例性材料在77 K至277 K之间仍可弹性弯曲,并且在发射波长和强度之间显示出高度线性相关性,同时它还以有源波导模式转换自身荧光。这种通用的新方法将可用于光学热传感的材料扩展到大量有机晶体,作为一类新型工程材料,并为设计能够在极端温度条件下运行的轻质、基于有机荧光的热传感器创造了机会,比如未来太空探索任务中将会遇到的极端温度条件。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fe5e/9458730/b29f55a7b0f0/41467_2022_32894_Fig1_HTML.jpg

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