红外光谱学
密度泛函理论
星团(航天器)
分子间力
氢键
分子
化学物理
背景(考古学)
Crystal(编程语言)
分子振动
谱线
化学
红外线的
结晶学
晶体结构
材料科学
分子物理学
计算化学
物理
计算机科学
光学
有机化学
程序设计语言
古生物学
天文
生物
作者
Xiaofang Yuan,Kun Luo,Nan Liu,Xueqiang Ji,Chao Liu,Julong He,Guangjun Tian,Yuanchun Zhao,Dongli Yu
摘要
Understanding the intermolecular interactions in the context of crystal packing is of fundamental significance in molecular materials science. Infrared (IR) spectroscopy can provide complementary structural information; however, it still remains a great challenge to accurately predict the molecular IR vibrations in the crystalline phase. Here we report a cluster-model approach to simulate the IR spectra of triazine-based molecular crystals via density functional theory (DFT) calculations. In the properly designed cluster models, the molecular IR vibrations are expressed by a representative unit, while the nearest-neighbouring molecules are treated as a "frozen shell" to mimic the surrounding crystallographic environments. Much smaller clusters can be built by considering the crystallographic equivalence in the unit cell, which are able to perform DFT calculations on more complicated crystal structures with endurable computational costs. The simulated spectra show excellent consistencies with the experimental ones, particularly providing an in-depth understanding of the vibrational modes closely related to hydrogen bonding. Most importantly, the selectively built clusters based on the crystallographically independent molecules in the unit cell allow us to perform specific IR-spectral simulations, by which their distinct hydrogen-bonding environments have been clearly revealed for the first time.
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