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高分辨率扫描隧道显微镜对混合单层保护金纳米粒子的表征。

High-resolution scanning tunneling microscopy characterization of mixed monolayer protected gold nanoparticles.

机构信息

Institute of Materials, École Politechnique Fédérale de Lausanne , Lausanne, Switzerland.

出版信息

ACS Nano. 2013 Oct 22;7(10):8529-39. doi: 10.1021/nn402414b. Epub 2013 Sep 18.

DOI:10.1021/nn402414b
PMID:24024977
Abstract

Gold nanoparticles protected by a binary mixture of thiolate molecules have a ligand shell that can spontaneously separate into nanoscale domains. Complex morphologies arise in such ligand shells, including striped, patchy, and Janus domains. Characterization of these morphologies remains a challenge. Scanning tunneling microscopy (STM) imaging has been one of the key approaches to determine these structures, yet the imaging of nanoparticles' surfaces faces difficulty stemming from steep surface curvature, complex molecular structures, and the possibility of imaging artifacts in the same size range. Images obtained to date have lacked molecular resolution, and only domains have been resolved. There is a clear need for images that resolve the molecular arrangement that leads to domain formation on the ligand shell of these particles. Herein we report an advance in the STM imaging of gold nanoparticles, revealing some of the molecules that constitute the domains in striped and Janus gold nanoparticles. We analyze the images to determine molecular arrangements on parts of the particles, highlight molecular "defects" present in the ligand shell, show persistence of the features across subsequent images, and observe the transition from quasi-molecular to domain resolution. The ability to resolve single molecules in the ligand shell of nanoparticles could lead to a more comprehensive understanding of the role of the ligand structure in determining the properties of mixed-monolayer-protected gold nanoparticles.

摘要

由混合硫醇分子保护的金纳米粒子具有可以自发分离成纳米尺度域的配体壳。在这种配体壳中会出现复杂的形态,包括条纹状、斑驳状和双面状域。对这些形态的表征仍然是一个挑战。扫描隧道显微镜(STM)成像一直是确定这些结构的关键方法之一,但由于表面曲率陡峭、分子结构复杂以及在相同尺寸范围内可能存在成像伪影,纳米粒子表面的成像仍然具有挑战性。迄今为止获得的图像缺乏分子分辨率,只能分辨出域。显然需要能够分辨出导致这些粒子配体壳上形成域的分子排列的图像。在此,我们报告了在金纳米粒子的 STM 成像方面的一项进展,揭示了条纹状和双面金纳米粒子中构成域的一些分子。我们分析图像以确定粒子部分上的分子排列,突出配体壳中存在的分子“缺陷”,展示特征在后续图像中的持续存在,并观察从准分子分辨率到域分辨率的转变。在纳米粒子的配体壳中分辨单个分子的能力可能会导致更全面地了解配体结构在确定混合单分子层保护的金纳米粒子性质方面的作用。

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