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将视觉的振动相干性设计到一种合成分子装置中。

Engineering the vibrational coherence of vision into a synthetic molecular device.

作者信息

Gueye Moussa, Manathunga Madushanka, Agathangelou Damianos, Orozco Yoelvis, Paolino Marco, Fusi Stefania, Haacke Stefan, Olivucci Massimo, Léonard Jérémie

机构信息

Université de Strasbourg, CNRS, Institut de Physique et Chimie des Matériaux de Strasbourg, UMR 7504, F-67034, Strasbourg, France.

Department of Chemistry, Bowling Green State University, Bowling Green, OH, 43403, USA.

出版信息

Nat Commun. 2018 Jan 22;9(1):313. doi: 10.1038/s41467-017-02668-w.

Abstract

The light-induced double-bond isomerization of the visual pigment rhodopsin operates a molecular-level optomechanical energy transduction, which triggers a crucial protein structure change. In fact, rhodopsin isomerization occurs according to a unique, ultrafast mechanism that preserves mode-specific vibrational coherence all the way from the reactant excited state to the primary photoproduct ground state. The engineering of such an energy-funnelling function in synthetic compounds would pave the way towards biomimetic molecular machines capable of achieving optimum light-to-mechanical energy conversion. Here we use resonance and off-resonance vibrational coherence spectroscopy to demonstrate that a rhodopsin-like isomerization operates in a biomimetic molecular switch in solution. Furthermore, by using quantum chemical simulations, we show why the observed coherent nuclear motion critically depends on minor chemical modifications capable to induce specific geometric and electronic effects. This finding provides a strategy for engineering vibrationally coherent motions in other synthetic systems.

摘要

视觉色素视紫红质的光诱导双键异构化作用实现了分子水平的光机械能转换,从而引发关键的蛋白质结构变化。事实上,视紫红质异构化是按照一种独特的超快机制发生的,该机制从反应物激发态到初级光产物基态全程都保持模式特异性振动相干性。在合成化合物中设计这样一种能量漏斗功能,将为能够实现最佳光机械能转换的仿生分子机器铺平道路。在此,我们利用共振和非共振振动相干光谱证明,类似视紫红质的异构化作用在溶液中的一种仿生分子开关中发挥作用。此外,通过量子化学模拟,我们展示了为何观察到的相干核运动关键取决于能够引发特定几何和电子效应的微小化学修饰。这一发现为在其他合成系统中设计振动相干运动提供了一种策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d983/5778125/6dad2578a30a/41467_2017_2668_Fig1_HTML.jpg

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