Simkó Irén, Fábri Csaba, Császár Attila G
Hevesy György PhD School of Chemistry, ELTE Eötvös Loránd University, Pázmány Péter sétány 1/A, H-1117 Budapest, Hungary.
Laboratory of Molecular Structure and Dynamics, Institute of Chemistry, ELTE Eötvös Loránd University, Pázmány Péter sétány 1/A, H-1117 Budapest, Hungary.
J Chem Theory Comput. 2023 Jan 10;19(1):42-50. doi: 10.1021/acs.jctc.2c00991. Epub 2022 Dec 19.
Experimental and computational results about the structure, dynamics, and rovibrational spectra of protonated methane have challenged a considerable number of traditional chemical concepts. Hereby theoretical and computational results are provided about the dynamical structure of CH. It is shown that the ground vibrational state investigated thus far by computations, forbidden by nuclear-spin statistics, has a structure similar to the first allowed vibrational state and, in fact, the structures of all vibrational states significantly below 200 cm are highly similar. Spatial delocalization of the nuclei, determined by nuclear densities computed from accurate variational vibrational wave functions, turns out to be limited when viewed in the body-fixed frame, confirming that the effective structure of CH is well described as a CH tripod with a H unit on top of it. The interesting and unusual qualitative aspects of the sophisticated state-dependent variational results receive full explanation via simple quantum-graph models.
关于质子化甲烷的结构、动力学和振转光谱的实验与计算结果对相当多传统化学概念提出了挑战。在此给出了关于CH动力学结构的理论和计算结果。结果表明,迄今为止通过计算研究的基振动态,虽被核自旋统计所禁止,但其结构与第一个允许的振动态相似,事实上,所有显著低于200 cm的振动态结构都高度相似。从精确变分振动波函数计算得到的核密度所确定的核的空间离域,在体固定坐标系中来看是有限的,这证实了CH的有效结构可以很好地描述为一个顶部带有一个H单元的CH三脚架。复杂的状态依赖变分结果中有趣且不寻常的定性方面通过简单的量子图模型得到了充分解释。