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Correlation of structure with UV-visible spectra by varying SH composition in Au-SH nanoclusters

机译:AU-SH纳米壳体不同SH组成的UV可见光谱结构的相关性

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In the present work, we model artificial neural network (ANN) potentials for Au-n(SH)(m) nanoclusters in the range of n = 10 to n = 38. The accuracy of ANN potentials is tested by comparing the global minimum (GM) structures of Au-n(SH)(m) nanoclusters, at saturated amount of SH, with the earlier reported structures. The GM structures are reported for the first time for nanoclusters with compositions lower than the saturated SH composition. We calculate the probability of low energy isomers to explain the fluxional behaviour of Au-n(SH)(m) nanoclusters at lower SH compositions. Furthermore, we try to correlate the structures of Au-n(SH)(m) nanoclusters with UV-visible spectra based on Time-dependent density functional theory (IDDFT) calculations. The UV-visible spectral analysis reveals that significant spectroscopic variations are observed at different SH compositions. This study provides a fundamental understanding of structural changes with decreasing SH compositions and with increasing the size of the nanocluster. Published by AIP Publishing.
机译:在目前的工作中,我们模拟了N = 10至n = 38的Au-n(sh)(m)纳米单元的人工神经网络(ANN)电位。通过比较全局最小值来测试ANN电位的准确性( GM)AU-N(SH)(M)纳米能器的结构,饱和量的SH,具有前面的报告的结构。将GM结构首次报告用于纳米团簇的组合物低于饱和SH组成。我们计算低能量异构体的概率,以解释下SH组合物在下SH组合物下的AU-N(SH)(M)纳米能器的势级行为。此外,我们尝试将Au-n(sh)(m)纳米能器的结构与UV可见光谱基于时间依赖的密度泛函理论(IDDFT)计算。 UV可见光光谱分析表明,在不同的SH组合物中观察到显着的光谱变异。本研究提供了对结构变化的基本理解,随着SH组成的降低,增加了纳米光刻的尺寸。通过AIP发布发布。

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