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控制聚合物薄膜中偶氮苯异构化动力学湿度敏感性的策略。

Strategies to control humidity sensitivity of azobenzene isomerisation kinetics in polymer thin films.

作者信息

Vesamäki Sami, Meteling Henning, Nasare Roshan, Siiskonen Antti, Patrakka Jani, Roas-Escalona Nelmary, Linder Markus, Virkki Matti, Priimagi Arri

机构信息

Faculty of Engineering and Natural Sciences, Tampere University, Tampere, Finland.

Department of Bioproducts and Biosystems, Aalto University, Espoo, Finland.

出版信息

Commun Mater. 2024;5(1):209. doi: 10.1038/s43246-024-00642-w. Epub 2024 Oct 2.

Abstract

Azobenzenes are versatile photoswitches that garner interest in applications ranging from photobiology to energy storage. Despite their great potential, transforming azobenzene-based discoveries and proof-of-concept demonstrations from the lab to the market is highly challenging. Herein we give an overview of a journey that started from a discovery of hydroxyazobenzene's humidity sensitive isomerisation kinetics, developed into commercialization efforts of azobenzene-containing thin film sensors for optical monitoring of the relative humidity of air, and arrives to the present work aiming for better design of such sensors by understanding the different factors affecting the humidity sensitivity. Our concept is based on thermal isomerisation kinetics of tautomerizable azobenzenes in polymer matrices which, using pre-defined calibration curves, can be converted to relative humidity at known temperature. We present a small library of tautomerizable azobenzenes exhibiting humidity sensitive isomerisation kinetics in hygroscopic polymer films. We also investigate how water absorption properties of the polymer used, and the isomerisation kinetics are linked and how the azobenzene content in the thin film affects both properties. Based on our findings we propose simple strategies for further development of azobenzene-based optical humidity sensors.

摘要

偶氮苯是用途广泛的光开关,在从光生物学到能量存储等各种应用中备受关注。尽管它们具有巨大潜力,但将基于偶氮苯的发现和概念验证演示从实验室转化到市场极具挑战性。在此,我们概述了一段历程,它始于对羟基偶氮苯湿度敏感异构化动力学的发现,发展为用于光学监测空气相对湿度的含偶氮苯薄膜传感器的商业化努力,并发展到目前旨在通过了解影响湿度敏感性的不同因素来更好地设计此类传感器的工作。我们的概念基于可互变异构的偶氮苯在聚合物基质中的热异构化动力学,利用预先定义的校准曲线,在已知温度下可将其转化为相对湿度。我们展示了一小类在吸湿聚合物薄膜中表现出湿度敏感异构化动力学的可互变异构偶氮苯。我们还研究了所用聚合物的吸水性能与异构化动力学之间的联系,以及薄膜中偶氮苯含量如何影响这两种性能。基于我们的发现,我们提出了进一步开发基于偶氮苯的光学湿度传感器的简单策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c649/11446815/d032eaa787e6/43246_2024_642_Fig1_HTML.jpg

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