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/ 双光子吸收激活的分子光开关:不同家族的比较。

/ Molecular Photoswitches Activated by Two-Photon Absorption: Comparison between Different Families.

机构信息

Departamento de Química Analítica, Química Física e Ingeniería Química, Universidad de Alcalá, Ctra. Madrid-Barcelona, Km 33.600, 28805 Alcalá de Henares, Spain.

Instituto de Investigación Química "Andrés M. del Rio" (IQAR), Universidad de Alcalá, Ctra. Madrid-Barcelona, Km 33.600, 28805 Alcalá de Henares, Spain.

出版信息

Molecules. 2021 Dec 5;26(23):7379. doi: 10.3390/molecules26237379.

Abstract

Nonlinear optical techniques as two-photon absorption (TPA) have raised relevant interest within the last years due to the capability to excite chromophores with photons of wavelength equal to only half of the corresponding one-photon absorption energy. At the same time, its probability being proportional to the square of the light source intensity, it allows a better spatial control of the light-induced phenomenon. Although a consistent number of experimental studies focus on increasing the TPA cross section, very few of them are devoted to the study of photochemical phenomena induced by TPA. Here, we show a design strategy to find suitable / photoswitches that can be activated by TPA. A theoretical approach is followed to predict the TPA cross sections related to different excited states of various photoswitches' families, finally concluding that protonated Schiff-bases (retinal)-like photoswitches outperform compared to the others. The donor-acceptor substitution effect is therefore rationalized for the successful TPA activatable photoswitch, in order to maximize its properties, finally also forecasting a possible application in optogenetics. Some experimental measurements are also carried out to support our conclusions.

摘要

非线性光学技术,如双光子吸收(TPA),由于能够用波长等于相应单光子吸收能量一半的光子激发发色团,近年来引起了人们的关注。同时,由于其概率与光源强度的平方成正比,因此它允许对光诱导现象进行更好的空间控制。尽管大量的实验研究集中在提高 TPA 截面上,但很少有研究致力于研究 TPA 诱导的光化学反应现象。在这里,我们展示了一种寻找合适的光开关的设计策略,这些光开关可以通过 TPA 激活。我们采用理论方法预测了不同光开关家族不同激发态的 TPA 截面,最后得出结论,质子化席夫碱(视黄醛)类光开关比其他光开关表现更好。因此,为了最大限度地提高其性能,对供体-受体取代效应进行了合理化,最终还预测了其在光遗传学中的可能应用。还进行了一些实验测量来支持我们的结论。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a956/8659108/7ba79f84b1c9/molecules-26-07379-g001.jpg

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