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Thermodynamic stability of ligand-protected metal nanoclusters

机译:配体保护的金属纳米团簇的热力学稳定性

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摘要

Despite the great advances in synthesis and structural determination of atomically precise, thiolate-protected metal nanoclusters, our understanding of the driving forces for their colloidal stabilization is very limited. Currently there is a lack of models able to describe the thermodynamic stability of these ‘magic-number’ colloidal nanoclusters as a function of their atomic-level structural characteristics. Herein, we introduce the thermodynamic stability theory, derived from first principles, which is able to address stability of thiolate-protected metal nanoclusters as a function of the number of metal core atoms and thiolates on the nanocluster shell. Surprisingly, we reveal a fine energy balance between the core cohesive energy and the shell-to-core binding energy that appears to drive nanocluster stabilization. Our theory applies to both charged and neutral systems and captures a large number of experimental observations. Importantly, it opens new avenues for accelerating the discovery of stable, atomically precise, colloidal metal nanoclusters.
机译:尽管在原子上精确的,受硫醇盐保护的金属纳米团簇的合成和结构确定方面取得了巨大进步,但我们对其胶体稳定化驱动力的理解仍然十分有限。当前,缺乏能够描述这些“魔数”胶体纳米团簇的热力学稳定性作为其原子级结构特征的函数的模型。本文中,我们介绍了从第一性原理衍生而来的热力学稳定性理论,该理论能够解决硫醇盐保护的金属纳米簇的稳定性随纳米簇壳上金属核原子和硫醇盐的数量而变化的问题。出人意料的是,我们揭示了核内聚能与壳对核结合能之间的良好能量平衡,这似乎在推动纳米团簇的稳定。我们的理论适用于带电和中性系统,并涵盖了大量实验观察结果。重要的是,它为加速发现稳定的,原子精确的胶态金属纳米团簇开辟了新途径。

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