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首页> 外文期刊>ACS nano >Capping Ligand Vortices as 'Atomic Orbitals' in Nanocrystal Self-Assembly
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Capping Ligand Vortices as 'Atomic Orbitals' in Nanocrystal Self-Assembly

机译:将配体涡旋作为“原子轨道”在纳米晶体自组装中

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We present a detailed analysis of the interaction between two nanocrystals capped with ligands consisting of hydrocarbon chains by united atom molecular dynamics simulations. We show that the bonding of two nanocrystals is characterized by ligand textures in the form of vortices. These results are generalized to nanocrystals of different types (differing core and ligand sizes) where the structure of the vortices depends on the softness asymmetry. We provide rigorous calculations for the binding free energy, show that these energies are independent of the chemical composition of the cores, and derive analytical formulas for the equilibrium separation. We discuss the implications of our results for the self-assembly of single-component and binary nanoparticle superlattices. Overall, our results show that the structure of the ligands completely determines the bonding of nanocrystals, fully supporting the predictions of the recently proposed Orbifold topological model.
机译:我们对由联合Atom分子动力学模拟组成的配体组成的配体的两个纳米晶体之间的相互作用进行了详细的分析。 我们表明,两个纳米晶体的键合的特征在于涡旋形式的配体纹理。 这些结果是推广到不同类型的纳米晶体(不同的核心和配体尺寸),其中涡流的结构取决于柔软性不对称。 我们为绑定的自由能提供严格的计算,表明这些能量与核心的化学成分无关,并导出平衡分离的分析公式。 我们讨论了我们对单组分和二进制纳米粒子超级图案的自组装的影响。 总体而言,我们的结果表明,配体的结构完全决定了纳米晶体的粘接,完全支持最近提出的拓扑拓扑模型的预测。

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