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第一性原理研究金纳米颗粒的电化学性质。

First-principles investigation of electrochemical properties of gold nanoparticles.

机构信息

Departamento de Física, Universidade Federal de Ouro Preto, Campus Morro do Cruzeiro, Ouro Preto, MG, Brazil.

出版信息

Nanotechnology. 2010 Feb 10;21(6):065705. doi: 10.1088/0957-4484/21/6/065705. Epub 2010 Jan 8.

Abstract

A first-principles formalism is employed to investigate the effects of size and structure on the electronic and electrochemical properties of Au nanoparticles with diameters between 0.8 and 2.0 nm. We find that the behavior of the ionization potentials (IPs) and the electron affinities (EAs) as a function of cluster size can be separated into many-body and single-electron contributions. The many-body part is only (and continuously) dependent on particle size, and can be very well described in terms of the capacitance of classical spherical conductors for clusters with more the 55 atoms. For smaller clusters, molecule-like features lead the capacitance and fundamental gap to differ systematically from those of a classical conductor with decreasing size. The single-electron part fluctuates with particle structure. Upon calculating the neutral chemical potential micro(0) = (IP+EA)/2, the many-body contributions cancel out, resulting in fluctuations of micro(0) around the bulk Au work function, consistent with experimental results. The values of IP and EA changes upon functionalization with thiolated molecules, and the magnitude of the observed changes does not depend on the length of the alkane chain. The functionalization can also lead to a transition from metallic to non-metallic behavior in small nanoparticles, which is consistent with experimental observations.

摘要

采用第一性原理方法研究了直径为 0.8 至 2.0nm 的 Au 纳米粒子的尺寸和结构对其电子和电化学性质的影响。我们发现,离化能(IP)和电子亲和能(EA)随团簇尺寸的变化行为可以分为多体和单电子贡献。多体部分仅(且连续)依赖于颗粒尺寸,可以很好地用具有超过 55 个原子的团簇的经典球形导体的电容来描述。对于较小的团簇,分子样特征导致电容和基本能隙系统地偏离具有减小尺寸的经典导体的电容和基本能隙。单电子部分随颗粒结构而波动。在计算中性化学势μ(0)=(IP+EA)/2 时,多体贡献相消,导致μ(0)在块状 Au 功函数周围波动,这与实验结果一致。用巯基化分子功能化后 IP 和 EA 会发生变化,观察到的变化幅度与烷烃链的长度无关。功能化也可以导致小纳米粒子中从金属到非金属行为的转变,这与实验观察一致。

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