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Local photo-mechanical stiffness revealed in gold nanoparticles supracrystals by ultrafast small-angle electron diffraction

机译:超快小角电子衍射在金纳米粒子超晶体中揭示的局部光机械刚度

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摘要

We demonstrate that highly ordered two-dimensional crystals of ligand-capped gold nanoparticles display a local photo-mechanical stiffness as high as that of solids such as graphite. In out-of-equilibrium electron diffraction experiments, a strong temperature jump is induced in a thin film with a femtosecond laser pulse. The initial electronic excitation transfers energy to the underlying structural degrees of freedom, with a rate generally proportional to the stiffness of the material. Using femtosecond small-angle electron diffraction, we observe the temporal evolution of the diffraction feature associated with the nearest-neighbor nanoparticle distance. The Debye-Waller decay for the octanethiol-capped nanoparticle supracrystal, in particular, is found to be unexpectedly fast, almost as fast as the stiffest solid known and observed by the same technique, i.e., graphite. Our observations unravel that local stiffness in a dense supramolecular assembly can be created by van der Waals interactions up to a level comparable to crystalline systems characterized by covalent bonding.
机译:我们证明,配体封端的金纳米颗粒的高度有序的二维晶体显示出与诸如石墨之类的固体一样高的局部光机械刚度。在非平衡电子衍射实验中,飞秒激光脉冲在薄膜中引起强烈的温度跃变。初始电子激发将能量转移到基本的结构自由度,速率通常与材料的刚度成比例。使用飞秒小角电子衍射,我们观察到与最近邻居纳米粒子距离相关的衍射特征的时间演化。特别地,发现辛烷硫醇封端的纳米颗粒超晶体的德拜-沃勒衰变出乎意料地快,几乎与已知和通过相同技术观察到的最坚硬的固体,即石墨一样快。我们的观察结果表明,范德华相互作用可以在致密的超分子组装体中产生局部刚度,其水平可与以共价键为特征的晶体系统相媲美。

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