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基于噻蒽衍生物的离散分子用于氧传感与检测的高效室温磷光

Efficient Room-Temperature Phosphorescence from Discrete Molecules Based on Thianthrene Derivatives for Oxygen Sensing and Detection.

作者信息

Yang Zhiqiang, Zhao Shuaiqiang, Zhang Xiangyu, Liu Meng, Liu Haichao, Yang Bing

机构信息

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

出版信息

Front Chem. 2022 Jan 27;9:810304. doi: 10.3389/fchem.2021.810304. eCollection 2021.

Abstract

In this work, two thianthrene (TA) derivatives, 1-phenylthianthrene (TA1P) and 2-phenylthianthrene (TA2P), were synthesized with single-phenyl modification for pure organic discrete-molecule room-temperature phosphorescence (RTP). They both show the dual emission of fluorescence and RTP in amorphous polymer matrix after deoxygenation, as a result of a new mechanism of folding-induced spin-orbit coupling (SOC) enhancement. Compared with TA1P, TA2P exhibits a higher RTP efficiency and a larger spectral separation between fluorescence and RTP, which is ascribed to the substituent effect of TA at the 2-position. With decreasing oxygen concentration from 1.61% to 0%, the discrete-molecule TA2P shows an about 18-fold increase in RTP intensity and an almost constant fluorescence intensity, which can make TA2P as a self-reference ratiometric optical oxygen sensing probe at low oxygen concentrations. The oxygen quenching constant ( ) of TA2P is estimated as high as 10.22 KPa for polymethyl methacrylate (PMMA)-doped film, and even reach up to 111.86 KPa for Zeonex-doped film, which demonstrates a very high sensitivity in oxygen sensing and detection. This work provides a new idea to design pure organic discrete-molecule RTP materials with high efficiency, and TA derivatives show a potential to be applied in quantitative detection of oxygen as a new-generation optical oxygen-sensing material.

摘要

在本工作中,合成了两种噻蒽(TA)衍生物,即1-苯基噻蒽(TA1P)和2-苯基噻蒽(TA2P),通过单苯基修饰实现纯有机离散分子室温磷光(RTP)。脱氧后,它们在非晶态聚合物基质中均表现出荧光和RTP的双重发射,这是由折叠诱导自旋-轨道耦合(SOC)增强的新机制导致的。与TA1P相比,TA2P表现出更高的RTP效率以及荧光与RTP之间更大的光谱分离,这归因于TA在2-位的取代基效应。随着氧浓度从1.61%降至0%,离散分子TA2P的RTP强度增加约18倍,而荧光强度几乎保持不变,这使得TA2P可作为低氧浓度下的自参考比率型光学氧传感探针。对于聚甲基丙烯酸甲酯(PMMA)掺杂薄膜,TA2P的氧猝灭常数()估计高达10.22 KPa,对于Zeonex掺杂薄膜甚至可达111.86 KPa,这表明其在氧传感和检测中具有非常高的灵敏度。这项工作为设计高效的纯有机离散分子RTP材料提供了新思路,TA衍生物作为新一代光学氧传感材料在氧的定量检测方面具有应用潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0d02/8828495/efd6a51752ae/fchem-09-810304-g005.jpg

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