Puzzarini Cristina, Stanton John F
Dipartimento di Chimica "Giacomo Ciamician", Università di Bologna, via F. Selmi 2, 40126, Bologna, Italy.
Department of Chemistry, University of Florida, Gainesville, FL, 32611, USA.
Phys Chem Chem Phys. 2023 Jan 18;25(3):1421-1429. doi: 10.1039/d2cp04706c.
Rotational spectroscopy is the technique of choice for investigating molecular structures in the gas phase. Indeed, rotational constants are strongly connected to the geometry of the molecular system under consideration. Therefore, they are powerful tools for assessing the accuracy that quantum chemical approaches can reach in structural determinations. In this review article, it is shown how it is possible to measure the accuracy of a computed equilibrium geometry based on the comparison of rotational constants. But, it is also addressed what accuracy is required by computations for providing molecular structures and thus rotational constants that are useful to experiment. Quantum chemical methodologies for obtaining the "0.1% accuracy" for rotational constants are reviewed for systems ranging in size from small molecules to small polycyclic aromatic hydrocarbons. This accuracy for systems containing two dozen or so atoms opens the way towards future applications such as the accurate characterization of non-covalent interactions, which play a key role in several biological and technological processes.
旋转光谱学是研究气相分子结构的首选技术。实际上,转动常数与所考虑的分子体系的几何结构密切相关。因此,它们是评估量子化学方法在结构测定中所能达到的精度的有力工具。在这篇综述文章中,展示了如何基于转动常数的比较来测量计算得到的平衡几何结构的精度。但是,也讨论了计算需要达到何种精度才能提供对实验有用的分子结构以及转动常数。本文综述了从小分子到小的多环芳烃等不同尺寸体系获得转动常数“0.1%精度”的量子化学方法。对于含有大约二十几个原子的体系,这种精度为未来的应用开辟了道路,例如对非共价相互作用的精确表征,非共价相互作用在若干生物和技术过程中起着关键作用。