Attosecond Probing of Coherent Vibrational Dynamics in CBr4.

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS
ACS Applied Bio Materials Pub Date : 2024-10-24 Epub Date: 2024-10-14 DOI:10.1021/acs.jpca.4c05210
Jen-Hao Ou, Diptarka Hait, Patrick Rupprecht, John E Beetar, Todd J Martínez, Stephen R Leone
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引用次数: 0

Abstract

A coherent vibrational wavepacket is launched and manipulated in the symmetric stretch (a1) mode of CBr4, by impulsive stimulated Raman scattering (ISRS) from nonresonant 400 nm laser pump pulses with various peak intensities on the order of tens of 1012 W/cm2. Extreme ultraviolet (XUV) attosecond transient absorption spectroscopy (ATAS) records the wavepacket dynamics as temporal oscillations in XUV absorption energy at the bromine M4,5 3d3/2,5/2 edges around 70 eV. The results are augmented by nuclear time-dependent Schrödinger equation simulations. Slopes of the (Br 3d3/2,5/2)-110a1* core-excited state potential energy surface (PES) along the a1 mode are calculated to be -9.4 eV/Å from restricted open-shell Kohn-Sham calculations. Using analytical relations derived for the small-displacement limit and the calculated slopes of the core-excited state PES, a deeper insight into the vibrational dynamics is obtained by retrieving the experimental excursion amplitude of the vibrational wavepacket and the amount of population transferred to the vibrational first-excited state as a function of pump-pulse peak intensity. Experimentally, the results show that XUV ATAS is capable of resolving oscillations in the XUV absorption energy on the order of a few to tens of meV with tens of femtosecond time precision. This corresponds to change in C-Br bond length on the order of 10-4 to 10-3 Å. The results and the analytic relationships offer a clear physical picture, on multiple levels of understanding, of how the pump-pulse peak intensity controls the vibrational dynamics launched by nonresonant ISRS in the small-displacement limit.

CBr4 中相干振荡动力学的阿秒探测。
在 CBr4 的对称伸展 (a1) 模式中,通过非共振 400 nm 激光泵浦脉冲的脉冲刺激拉曼散射 (ISRS),在数十 1012 W/cm2 量级的不同峰值强度下发射并操纵了一个相干振动波包。极紫外(XUV)阿秒瞬态吸收光谱(ATAS)将波包动力学记录为溴 M4,5 3d3/2,5/2 边缘 70 eV 左右 XUV 吸收能量的时间振荡。核时变薛定谔方程模拟对这些结果进行了补充。根据受限的开壳 Kohn-Sham 计算,(Br 3d3/2,5/2)-110a1* 核激发态势能面 (PES) 沿着 a1 模式的斜率为 -9.4 eV/Å。利用为小位移极限推导出的分析关系和计算出的核激发态势能面斜率,通过检索振动波包的实验偏移振幅和转移到振动先激发态的种群数量与泵脉冲峰值强度的函数关系,对振动动力学有了更深入的了解。实验结果表明,XUV ATAS 能够以数十飞秒的时间精度分辨 XUV 吸收能量中几到几十 meV 量级的振荡。这些结果和分析关系提供了一幅清晰的物理图景,从多个层面揭示了泵脉冲峰值强度如何在小位移极限控制非共振 ISRS 产生的振动动力学。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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