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靛蓝类光开关:可见光响应分子工具

Indigoid Photoswitches: Visible Light Responsive Molecular Tools.

作者信息

Petermayer Christian, Dube Henry

机构信息

Ludwig-Maximilians-Universität München , Department für Chemie and Munich Center for Integrated Protein Science (CIPSM) , D-81377 Munich , Germany.

出版信息

Acc Chem Res. 2018 May 15;51(5):1153-1163. doi: 10.1021/acs.accounts.7b00638. Epub 2018 Apr 25.


DOI:10.1021/acs.accounts.7b00638
PMID:29694014
Abstract

Indigoid photoswitches comprise a class of chromophores that are derived from the parent and well-known indigo dye. Different from most photoswitches their core structures absorb in the visible region of the spectrum in both isomeric states even without substitutions, which makes them especially interesting for applications not tolerant of high-energy UV light. Also different from most current photoswitching systems, they provide highly rigid structures that undergo large yet precisely controllable geometry changes upon photoisomerization. The favorable combination of pronounced photochromism, fast and efficient photoreactions, and high thermal bistability have led to a strongly increased interest in indigoid photoswitches over the last years. As a result, intriguing applications of these chromophores as reversible triggering units in supramolecular and biological chemistry, the field of molecular machines, or smart molecules have been put forward. In this Account current developments in the synthesis, mechanistic understanding of light responsiveness, advantageous properties as phototools, and new applications of indigoid photoswitches are summarized with the focus on hemithioindigo, hemiindigo, and indigo as key examples. Many methods for the synthesis of hemithioindigos are known, but derivatives with a fourth substituent at the double bond could not easily be prepared because of the resulting increased steric hindrance in the products. Recent efforts in our laboratory have provided two different methods to prepare these highly promising photoswitches in very efficient ways. One method is especially designed for the introduction of sterically hindered ketones while the second one allows rapid structural diversification in only three high-yielding synthetic steps. Given the lesser prominence of indigoid photoswitches, mechanistic understanding of their excited state behavior and therefore rational design opportunities for photophysical properties are also much less developed compared to, for example, azobenzenes or stilbenes. By testing different substitution patterns, we were able to produce strongly beneficial property combinations in hemithioindigo, hemiindigo, or indigo photoswitches, for example, red-light responsiveness together with very high thermal bistability of the switching states. This is of particular importance for photopharmacological and biological applications of these switches to reduce the damage from high-energy light and to enable deep penetration of the light into tissues. An additional ground state twisting in hemithioindigo allowed us to control the type of light-induced bond rotation simply by the polarity of the solvent. With the aid of time-resolved spectroscopy and quantum yield measurements, we could show that in apolar cyclohexane exclusive double bond rotation takes place while in polar DMSO sole single bond rotation is observed. Such precise control over geometrical changes is of great interest for the construction of future sophisticated molecular machinery. In this field, we have introduced hemithioindigo photoswitches as novel core structure for molecular motors providing very fast directional motions upon irradiation with visible light. The mechanism of the directional rotation adheres to a four-step process, which could directly be observed in situ with a slower second-generation motor. Further applications of indigoid photoswitches were made in our laboratory in the realms of photocontrolled folding and host-guest chemistry as well as in molecular digital information processing showcasing the great versatility and enormous future promise of indigoid photoswitches.

摘要

靛蓝类光开关包含一类发色团,它们源自母体且广为人知的靛蓝染料。与大多数光开关不同,即使没有取代基,它们的核心结构在两种异构状态下都能在光谱的可见光区域吸收,这使得它们对于不耐受高能紫外光的应用特别有吸引力。同样与大多数当前的光开关系统不同,它们提供高度刚性的结构,在光异构化时会发生大的但精确可控的几何变化。显著的光致变色、快速高效的光化学反应以及高热双稳性的有利组合,使得在过去几年中人们对靛蓝类光开关的兴趣大幅增加。因此,已经提出了这些发色团作为超分子和生物化学、分子机器领域或智能分子中的可逆触发单元的有趣应用。在本综述中,总结了靛蓝类光开关在合成、光响应机理理解、作为光工具的有利特性以及新应用方面的当前进展,重点关注半硫代靛蓝、半靛蓝和靛蓝作为关键示例。已知许多合成半硫代靛蓝的方法,但由于产物中空间位阻增加,双键带有第四个取代基的衍生物不容易制备。我们实验室最近的努力提供了两种不同的方法,以非常有效的方式制备这些极具前景的光开关。一种方法专门设计用于引入空间位阻较大的酮,而另一种方法仅通过三个高产率的合成步骤就允许快速的结构多样化。鉴于靛蓝类光开关的关注度较低,与例如偶氮苯或芪相比,对其激发态行为的机理理解以及因此对光物理性质的合理设计机会也发展得少得多。通过测试不同的取代模式,我们能够在半硫代靛蓝、半靛蓝或靛蓝光开关中产生非常有益的性质组合,例如红光响应以及开关状态的非常高的热双稳性。这对于这些开关在光药理学和生物学应用中减少高能光的损伤并使光能够深入组织尤其重要。半硫代靛蓝中的额外基态扭曲使我们能够仅通过溶剂的极性来控制光诱导的键旋转类型。借助时间分辨光谱和量子产率测量,我们可以表明,在非极性环己烷中发生的是唯一的双键旋转,而在极性二甲基亚砜中观察到的是唯一的单键旋转。这种对几何变化的精确控制对于构建未来复杂的分子机器非常有意义。在这个领域,我们已经引入半硫代靛蓝光开关作为分子马达的新型核心结构,在用可见光照射时提供非常快速的定向运动。定向旋转的机制遵循一个四步过程,这可以用较慢的第二代马达原位直接观察到。我们实验室还在光控折叠和主客体化学领域以及分子数字信息处理中对靛蓝类光开关进行了进一步应用,展示了靛蓝类光开关的巨大通用性和巨大的未来前景。

相似文献

[1]
Indigoid Photoswitches: Visible Light Responsive Molecular Tools.

Acc Chem Res. 2018-5-15

[2]
Twisted Hemithioindigo Photoswitches: Solvent Polarity Determines the Type of Light-Induced Rotations.

J Am Chem Soc. 2016-9-13

[3]
A cross-conjugation approach for high-performance diaryl-hemithioindigo photoswitches.

Chem Sci. 2023-5-1

[4]
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[5]
Making fast photoswitches faster--using Hammett analysis to understand the limit of donor-acceptor approaches for faster hemithioindigo photoswitches.

Chemistry. 2014-10-20

[6]
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Chemistry. 2024-4-5

[7]
Bistable Photoswitching of Hemithioindigo with Green and Red Light: Entry Point to Advanced Molecular Digital Information Processing.

Chemistry. 2017-5-5

[8]
Easily Accessible Substituted Heterocyclic Hemithioindigos as Bistable Molecular Photoswitches.

Chemistry. 2023-8-25

[9]
Diaryl-hemiindigos as visible light, pH, and heat responsive four-state switches and application in photochromic transparent polymers.

Nat Commun. 2023-7-20

[10]
Heterocyclic Hemithioindigos: Highly Advantageous Properties as Molecular Photoswitches.

Angew Chem Int Ed Engl. 2022-10-24

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