Institute of Molecular Sciences and Engineering, Institute of Frontier and Interdisciplinary Science, Shandong University, Qingdao 266237, China.
Institute of Molecular Sciences and Engineering, Institute of Frontier and Interdisciplinary Science, Shandong University, Qingdao 266237, China.
Spectrochim Acta A Mol Biomol Spectrosc. 2022 Jan 5;264:120296. doi: 10.1016/j.saa.2021.120296. Epub 2021 Aug 21.
ESIPT behavior has attracted a lot of eyes of researchers in recent years because of its unique optical properties. Due to its large Stokes shift and double emission fluorescence, white light can be generated in the fluorophore based on the excited state intramolecular proton transfer (ESIPT) principle. The excited state proton transfer behavior of hydroxylated benzoxazole (BO-OH), benzothiazole (BS-OH) and benzoselenazole (BSe-OH) have been investigated in heptane, chloroform and DMF solvents. By comparing the infrared vibration spectra and the variation of bond parameters from the S to S states, and analyzing the frontier molecular orbitals, the influence of hydrogen bond dynamics, the solvent polarity, charge redistribution and the effects of different proton acceptors on proton transfer were observed. The only structural difference among the three substituted hydroxyfluorenes is the heteroatom in the azole ring (oxygen, sulfur and selenium, respectively). We have scanned the potential energy curve of the ESIPT process, and compared the potential barrier, it is found that the heavier chalcogen atoms are more favorable for proton transfer. At the same time, the potential application of changing heteroatoms in the azole ring by walking down the chalcogenic group in crystal luminescence color regulation is also discussed.
ESIPT 行为因其独特的光学性质近年来吸引了众多研究人员的关注。由于其较大的斯托克斯位移和双发射荧光特性,基于激发态分子内质子转移(ESIPT)原理的荧光团可以产生白光。在庚烷、氯仿和 DMF 溶剂中研究了羟基化苯并恶唑(BO-OH)、苯并噻唑(BS-OH)和苯并硒唑(BSe-OH)的激发态质子转移行为。通过比较红外振动光谱和 S 态到 S 态的键参数变化,并分析前沿分子轨道,观察了氢键动力学、溶剂极性、电荷重分布以及不同质子受体对质子转移的影响。三种取代羟基芴的唯一结构差异在于唑环中的杂原子(分别为氧、硫和硒)。我们已经扫描了 ESIPT 过程的势能曲线,并比较了势能垒,发现较重的硫属原子更有利于质子转移。同时,还讨论了通过在晶体发光颜色调节中沿着硫族元素族向下改变唑环中的杂原子来改变杂原子的潜在应用。