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手性分子振动光学活性的飞秒表征

Femtosecond characterization of vibrational optical activity of chiral molecules.

作者信息

Rhee Hanju, June Young-Gun, Lee Jang-Soo, Lee Kyung-Koo, Ha Jeong-Hyon, Kim Zee Hwan, Jeon Seung-Joon, Cho Minhaeng

机构信息

Department of Chemistry, Korea University, Seoul 136-701, Korea.

出版信息

Nature. 2009 Mar 19;458(7236):310-3. doi: 10.1038/nature07846.

Abstract

Optical activity is the result of chiral molecules interacting differently with left versus right circularly polarized light. Because of this intrinsic link to molecular structure, the determination of optical activity through circular dichroism (CD) spectroscopy has long served as a routine method for obtaining structural information about chemical and biological systems in condensed phases. A recent development is time-resolved CD spectroscopy, which can in principle map the structural changes associated with biomolecular function and thus lead to mechanistic insights into fundamental biological processes. But implementing time-resolved CD measurements is experimentally challenging because CD is a notoriously weak effect (a factor of 10(-4)-10(-6) smaller than absorption). In fact, this problem has so far prevented time-resolved vibrational CD experiments. Here we show that vibrational CD spectroscopy with femtosecond time resolution can be realized when using heterodyned spectral interferometry to detect the phase and amplitude of the infrared optical activity free-induction-decay field in time (much like in a pulsed NMR experiment). We show that we can detect extremely weak signals in the presence of large achiral background contributions, by simultaneously measuring with a femtosecond laser pulse the vibrational CD and optical rotatory dispersion spectra of dissolved chiral limonene molecules. We have so far only targeted molecules in equilibrium, but it would be straightforward to extend the method for the observation of ultrafast structural changes such as those occurring during protein folding or asymmetric chemical reactions. That is, we should now be in a position to produce 'molecular motion pictures' of fundamental molecular processes from a chiral perspective.

摘要

旋光性是手性分子与左旋和右旋圆偏振光相互作用不同的结果。由于与分子结构的这种内在联系,通过圆二色性(CD)光谱法测定旋光性长期以来一直是获取凝聚相中化学和生物系统结构信息的常规方法。最近的一项进展是时间分辨CD光谱法,原则上它可以绘制与生物分子功能相关的结构变化,从而深入了解基本生物过程的机制。但是实施时间分辨CD测量在实验上具有挑战性,因为CD是一种出了名的微弱效应(比吸收小10^(-4)-10^(-6)倍)。事实上,这个问题迄今为止阻碍了时间分辨振动CD实验。在这里我们表明,当使用外差光谱干涉测量法及时检测红外光学活性自由感应衰减场的相位和幅度时(很像在脉冲核磁共振实验中),可以实现具有飞秒时间分辨率的振动CD光谱法。我们表明,通过用飞秒激光脉冲同时测量溶解的手性柠檬烯分子的振动CD和旋光色散光谱,我们可以在存在大量非手性背景贡献的情况下检测到极其微弱的信号。到目前为止,我们只针对处于平衡状态的分子,但将该方法扩展用于观察超快结构变化(如蛋白质折叠或不对称化学反应过程中发生的变化)将是很直接的。也就是说,我们现在应该能够从手性角度制作基本分子过程的“分子运动图像”。

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