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迈向水溶液中的时间分辨激光T跳变/X射线探针光谱技术。

Toward time-resolved laser T-jump/X-ray probe spectroscopy in aqueous solutions.

作者信息

Cannelli O, Bacellar C, Ingle R A, Bohinc R, Kinschel D, Bauer B, Ferreira D S, Grolimund D, Mancini G F, Chergui M

机构信息

Laboratory of Ultrafast Spectroscopy, Lausanne Center for Ultrafast Science (LACUS), École Polytechnique Fédérale de Lausanne, CH-1015 Lausanne, Switzerland.

Laboratory of Femtochemistry-MicroXAS, Paul Scherrer Institut, 5232 PSI Villigen, Switzerland.

出版信息

Struct Dyn. 2019 Dec 11;6(6):064303. doi: 10.1063/1.5129626. eCollection 2019 Nov.

Abstract

Most chemical and biochemical reactions in nature and in industrial processes are driven by thermal effects that bring the reactants above the energy barrier for reaction. In aqueous solutions, this process can also be triggered by the laser driven temperature jump (T-jump) method, in which the water vibrational (stretch, bend, or combination) modes are excited by a short laser pulse, leading to a temperature increase in the irradiated volume within a few picoseconds. The combination of the laser T-jump with X-ray spectroscopic probes would add element-specificity as well as sensitivity to the structure, the oxidation state, and the spin state of the intermediates of reactions. Here, we present preliminary results of a near infrared pump/X-ray absorption spectroscopy probe to study the ligand exchange of an octahedral aqueous Cobalt complex, which is known to pass through intermediate steps yielding tetrahedral chlorinated as final species. The structural changes of the chemical reaction are monitored with great sensitivity, even in the presence of a mild local increase in temperature. This work opens perspectives for the study of non-light-driven reactions using time-resolved X-ray spectroscopic methods.

摘要

自然界和工业过程中的大多数化学和生物化学反应是由热效应驱动的,热效应使反应物越过反应的能量屏障。在水溶液中,这个过程也可以通过激光驱动的温度跃升(T-jump)方法触发,其中水的振动(拉伸、弯曲或组合)模式由短激光脉冲激发,导致在几皮秒内被照射体积的温度升高。激光T-jump与X射线光谱探针的结合将为反应中间体的结构、氧化态和自旋态增加元素特异性以及敏感性。在这里,我们展示了一种近红外泵浦/X射线吸收光谱探针的初步结果,用于研究八面体水合钴配合物的配体交换,已知该配合物会经过中间步骤,最终生成四面体氯化物。即使在温度有轻微局部升高的情况下,也能以高灵敏度监测化学反应的结构变化。这项工作为使用时间分辨X射线光谱方法研究非光驱动反应开辟了前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b7f2/6906120/505ab9a4a30f/SDTYAE-000006-064303_1-g001.jpg

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