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通过核密度估计对振动光谱模拟的统一观察。

A Unified View of Vibrational Spectroscopy Simulation through Kernel Density Estimations.

机构信息

Nano and Molecular Systems Research Unit, University of Oulu, Oulu 90014, Finland.

出版信息

J Phys Chem Lett. 2023 Apr 20;14(15):3691-3697. doi: 10.1021/acs.jpclett.3c00665. Epub 2023 Apr 10.

Abstract

To date, vibrational simulation results constitute more of an experimental support than a predictive tool, as the simulated vibrational modes are discrete due to quantization. This is different from what is obtained experimentally. Here, we propose a way to combine outputs such as the phonon density of states surrogate and peak intensities obtained from ab initio simulations to allow comparison with experimental data by using machine learning. This work is paving the way for using simulated vibrational spectra as a tool to identify materials with defined stoichiometry, enabling the separation of genuine vibrational features of pure phases from morphological and defect-induced signals.

摘要

迄今为止,振动模拟结果更多地是作为实验支持,而不是预测工具,因为模拟的振动模式由于量子化而呈现离散性。这与实验中获得的结果不同。在这里,我们提出了一种方法,可以将从第一性原理模拟中获得的声子态密度代理和峰强度等输出结果结合起来,通过机器学习来与实验数据进行比较。这项工作为将模拟振动谱用作识别具有确定化学计量的材料的工具铺平了道路,从而可以将纯相的真实振动特征与形态和缺陷诱导的信号区分开来。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/aca5/10123815/a6b013b7dacb/jz3c00665_0001.jpg

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