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Fluctuation-driven anisotropy in effective pair interactions between nanoparticles: Thiolated gold nanoparticles in ethane

机译:纳米粒子之间有效对相互作用中的波动驱动各向异性:乙烷中的硫代金纳米粒子

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Fluctuations within the ligand shell of a nanoparticle give rise to a significant degree of anisotropy in effective pair interactions for low grafting densities [B. Bozorgui, D. Meng, S. K. Kumar, C. Chakravarty, and A. Cacciuto, Nano Lett. 13, 2732 (2013)]. Here, we examine the corresponding fluctuation-driven anisotropy for gold nanocrystals densely passivated with short ligands. In particular, we consider gold nanocrystals capped by alkylthiols, both in vacuum and in ethane solvent at high density. As in the preceding study, we show that the anisotropy in the nanoparticle pair potential can be quantified by an angle-dependent correction term to the isotropic potential of mean force (PMF). We find that the anisotropy of the ligand shells is distance dependent, and strongly influenced by ligand interdigitation effects as well as expulsion of ligand chains from the interparticle region at short distances. Such fluctuation-driven anisotropy can be significant for alkylthiol-coated gold nanoparticles, specially for longer chain lengths, under good solvent conditions. The consequences of such anisotropy for self-assembly, specially as a function of grafting density, solvent quality and at interfaces, should provide some interesting insights in future work. Our results clearly show that an isotropic two-body PMF cannot adequately describe the thermodynamics and assembly behavior of nanoparticles in this dense grafting regime and inclusion of anisotropic effects, as well as possibly many-body interactions, is necessary. Extensions of this approach to other passivated nanoparticle systems and implications for self-assembly are considered.
机译:对于低接枝密度,纳米粒子的配体壳内的波动在有效的对相互作用中引起了很大程度的各向异性[B。 Bozorgui,D.Meng,S.K。Kumar,C.Chakravarty和A.Cacciuto,Nano Lett。 13,2732(2013)]。在这里,我们检查了由短配体密集钝化的金纳米晶体的相应的涨落驱动各向异性。特别地,我们考虑了在真空中和在乙烷溶剂中以高密度被烷基硫醇覆盖的金纳米晶体。如在先前的研究中,我们表明,可以通过对平均力(PMF)的各向同性电势的角度依赖性校正项来量化纳米粒子对电势中的各向异性。我们发现,配体壳层的各向异性是与距离有关的,并且受配体叉指效应以及在短距离内从颗粒间区域排出配体链的强烈影响。这种波动驱动的各向异性对于烷基硫醇包覆的金纳米粒子,特别是在良好的溶剂条件下较长的链长,尤其重要。这种各向异性对自组装的影响,特别是作为接枝密度,溶剂质量和界面的函数,应在以后的工作中提供一些有趣的见解。我们的结果清楚地表明,在这种致密的接枝方案中,各向同性的两体PMF无法充分描述纳米粒子的热力学和组装行为,因此必须包含各向异性效应以及可能的多体相互作用。考虑了该方法对其他钝化纳米粒子系统的扩展及其对自组装的影响。

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