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Tempering of Au nanoclusters: capturing the temperature-dependent competition among structural motifs

机译:回火的Au纳米束:捕捉与温度有关的之间的竞争结构图案

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摘要

A computational approach to determine the equilibrium structures of nanoclusters in the whole temperature range from 0 K to melting is developed. Our approach relies on Parallel Tempering Molecular Dynamics (PTMD) simulations complemented by Harmonic Superposition Approximation (HSA) calculations and global optimization searches, thus combining the accuracy of global optimization and HSA in describing the low-energy part of configuration space, together with the PTMD thorough sampling of high-energy configurations. This combined methodology is shown to be instrumental towards revealing the temperature-dependent structural motifs in Au nanoclusters of sizes 90, 147, and 201 atoms. The reported phenomenology is particularly rich, displaying a size- and temperature-dependent competition between the global energy minimum and other structural motifs. In the case of Au90 and Au147, the global minimum is also the dominant structure at finite temperatures. In contrast, the Au201 cluster undergoes a solid–solid transformation at low temperature (<200 K). Results indicate that PTMD and HSA very well agree at intermediate temperatures, between 300 and 400 K. For higher temperatures, PTMD gives an accurate description of equilibrium, while HSA fails in describing the melting range. On the other hand, HSA is more efficient in catching low-temperature structural transitions. Finally, we describe the elusive structures close to the melting region which can present complex and defective geometries, that are otherwise difficult to characterize through experimental imaging.
机译:计算方法来确定平衡结构的制备整个温度范围从0 K融化发展。回火分子动力学模拟(PTMD)辅以谐波叠加和全球近似(HSA)计算优化搜索,从而结合全局优化和HSA的准确性描述低能配置的一部分空间,一起PTMD彻底的抽样高能的配置。方法是显示工具揭示了与温度有关的结构图案的Au纳米束大小90、147和201个原子。特别丰富,显示大小,与温度有关的之间的竞争全球能源最小和其他结构图案。最低也是有限的主要结构温度。经历了在低固相固相转变温度(< 200 K)。结果表明,PTMD和保险公司同意在中间温度,在300年和400年之间K。温度,PTMD给一个精确的描述平衡,而HSA失败在描述融化的范围。高效的低温结构转换。结构接近地区可以融化现在的复杂和有缺陷的几何图形,否则很难描述通过吗实验成像。

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