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纳米尺度下的振动态密度和热力学:金纳米结构中的 3D-2D 转变。

Vibrational density of states and thermodynamics at the nanoscale: the 3D-2D transition in gold nanostructures.

机构信息

CEMES-CNRS Université de Toulouse, rue Jeanne Marvig, BP 94347, 31055 Toulouse Cedex 4, France.

出版信息

Sci Rep. 2016 Dec 16;6:39164. doi: 10.1038/srep39164.

Abstract

Surface enhanced Raman scattering (SERS) is generally and widely used to enhance the vibrational fingerprint of molecules located at the vicinity of noble metal nanoparticles. In this work, SERS is originally used to enhance the own vibrational density of states (VDOS) of nude and isolated gold nanoparticles. This offers the opportunity of analyzing finite size effects on the lattice dynamics which remains unattainable with conventional techniques based on neutron or x-ray inelastic scattering. By reducing the size down to few nanometers, the role of surface atoms versus volume atoms become dominant, and the "text-book" 3D-2D transition on the dynamical behavior is experimentally emphasized. "Anomalies" that have been predicted by a large panel of simulations at the atomic scale, are really observed, like the enhancement of the VDOS at low frequencies or the occurrence of localized modes at frequencies beyond the cut-off in bulk. Consequences on the thermodynamic properties at the nanoscale, like the reduction of the Debye temperature or the excess of the specific heat, have been evaluated. Finally the high sensitivity of reminiscent bulk-like phonons on the arrangements at the atomic scale is used to access the morphology and internal disorder of the nanoparticles.

摘要

表面增强拉曼散射(SERS)通常被广泛用于增强位于贵金属纳米粒子附近的分子的振动指纹。在这项工作中,SERS 最初被用于增强裸体和孤立的金纳米粒子的本征振动态密度(VDOS)。这为分析有限尺寸对晶格动力学的影响提供了机会,而传统基于中子或 X 射线非弹性散射的技术则无法实现这一目标。通过将尺寸缩小到几个纳米,表面原子与体积原子的作用变得占主导地位,并且实验上强调了“教科书”上的 3D-2D 转变。在原子尺度上进行的大量模拟已经预测到了“异常”现象,例如在低频下 VDOS 的增强,或者在体相中截止频率之外出现局域模式。在纳米尺度上对热力学性质的影响,如德拜温度的降低或比热的增加,已经得到了评估。最后, reminiscent bulk-like 声子对原子尺度上排列的高灵敏度被用于获取纳米粒子的形态和内部无序。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/62d0/5159851/8e713989c150/srep39164-f1.jpg

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