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利用时间分辨X射线吸收光谱法追踪二甲基二硫醚中267纳米诱导的自由基形成

Tracing the 267 nm-Induced Radical Formation in Dimethyl Disulfide Using Time-Resolved X-ray Absorption Spectroscopy.

作者信息

Schnorr Kirsten, Bhattacherjee Aditi, Oosterbaan Katherine J, Delcey Mickaël G, Yang Zheyue, Xue Tian, Attar Andrew R, Chatterley Adam S, Head-Gordon Martin, Leone Stephen R, Gessner Oliver

机构信息

Department of Chemistry , University of California , Berkeley , California 94720 , United States.

Chemical Sciences Division , Lawrence Berkeley National Laboratory , Berkeley , California 94720 , United States.

出版信息

J Phys Chem Lett. 2019 Mar 21;10(6):1382-1387. doi: 10.1021/acs.jpclett.9b00159. Epub 2019 Mar 11.

Abstract

Disulfide bonds are pivotal for the structure, function, and stability of proteins, and understanding ultraviolet (UV)-induced S-S bond cleavage is highly relevant for elucidating the fundamental mechanisms underlying protein photochemistry. Here, the near-UV photodecomposition mechanisms in gas-phase dimethyl disulfide, a prototype system with a S-S bond, are probed by ultrafast transient X-ray absorption spectroscopy. The evolving electronic structure during and after the dissociation is simultaneously monitored at the sulfur L-edges and the carbon K-edge with 100 fs (FWHM) temporal resolution using the broadband soft X-ray spectrum from a femtosecond high-order harmonics light source. Dissociation products are identified with the help of ADC and RASPT2 electronic-structure calculations. Rapid dissociation into two CHS radicals within 120 ± 30 fs is identified as the major relaxation pathway after excitation with 267 nm radiation. Additionally, a 30 ± 10% contribution from asymmetric CHS + CH dissociation is indicated by the appearance of CH radicals, which is, however, at least partly the result of multiphoton excitation.

摘要

二硫键对于蛋白质的结构、功能和稳定性至关重要,而了解紫外线(UV)诱导的S-S键断裂对于阐明蛋白质光化学的基本机制具有高度相关性。在此,通过超快瞬态X射线吸收光谱法探究了气相二甲基二硫醚(一种具有S-S键的原型体系)中的近紫外光分解机制。利用飞秒高次谐波光源的宽带软X射线光谱,以100飞秒(半高宽)的时间分辨率在硫L边和碳K边同时监测解离过程中和解离后的电子结构演变。借助ADC和RASPT2电子结构计算确定了解离产物。在用267 nm辐射激发后,在120±30飞秒内迅速解离为两个CHS自由基被确定为主要的弛豫途径。此外,CH自由基的出现表明不对称CHS + CH解离的贡献为30±10%,然而,这至少部分是多光子激发的结果。

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