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首页> 外文期刊>Structural Dynamics >Ultrafast electron diffraction from a Bi(111) surface: Impulsive lattice excitation and Debye–Waller analysis at large momentum transfer
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Ultrafast electron diffraction from a Bi(111) surface: Impulsive lattice excitation and Debye–Waller analysis at large momentum transfer

机译:来自Bi(111)表面的超快速电子衍射:大动量传递下的脉冲晶格激发和Debye-Waller分析

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The lattice response of a Bi(111) surface upon impulsive femtosecond laser excitation is studied with time-resolved reflection high-energy electron diffraction. We employ a Debye–Waller analysis at large momentum transfer of 9.3??sup?1/sup ≤ Δ k ≤?21.8??sup?1/sup in order to study the lattice excitation dynamics of the Bi surface under conditions of weak optical excitation up to 2 mJ/cmsup2/sup incident pump fluence. The observed time constants τ subint/sub of decay of diffraction spot intensity depend on the momentum transfer Δ k and range from 5 to 12 ps. This large variation of τ subint/sub is caused by the nonlinearity of the exponential function in the Debye–Waller factor and has to be taken into account for an intensity drop Δ I 0.2. An analysis of more than 20 diffraction spots with a large variation in Δ k gave a consistent value for the time constant τsubT/sub of vibrational excitation of the surface lattice of 12?±?1 ps independent on the excitation density. We found no evidence for a deviation from an isotropic Debye–Waller effect and conclude that the primary laser excitation leads to thermal lattice excitation, i.e., heating of the Bi surface.
机译:利用时间分辨反射高能电子衍射研究了Bi(111)表面在脉冲飞秒激光激发下的晶格响应。为了研究9.3 ?? ?1 ≤Δk≤?21.8 ?? ?1 的大动量传递,我们进行了德拜-沃勒分析,以研究Pb的晶格激发动力学。弱光激发下入射泵浦注量达2 mJ / cm 2 的Bi表面。观察到的衍射光斑强度衰减的时间常数τ int 取决于动量传递Δk,范围为5到12 ps。 τ int 的较大变化是由Debye-Waller因子中指数函数的非线性引起的,并且强度下降ΔI> 0.2时必须将其考虑在内。对20多个Δk的较大变化的衍射点进行分析,得出了与激发无关的12?±?1 ps的表面晶格振动激发的时间常数τ T 的恒定值密度。我们没有发现偏离各向同性德拜-华勒效应的证据,并得出结论,一次激光激发会导致热晶格激发,即Bi表面的加热。

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