Vaara Juha
Laboratory of Physical Chemistry, Department of Chemistry, FIN-00014, University of Helsinki, Finland.
Phys Chem Chem Phys. 2007 Oct 28;9(40):5399-418. doi: 10.1039/b706135h. Epub 2007 Jul 6.
The art of quantum chemical electronic structure calculation has over the last 15 years reached a point where systematic computational studies of magnetic response properties have become a routine procedure for molecular systems. One of their most prominent areas of application are the spectral parameters of nuclear magnetic resonance (NMR) spectroscopy, due to the immense importance of this experimental method in many scientific disciplines. This article attempts to give an overview on the theory and state-of-the-art of the practical computations in the field, in terms of the size of systems that can be treated, the accuracy that can be expected, and the various factors that would influence the agreement of even the most accurate imaginable electronic structure calculation with experiment. These factors include relativistic effects, thermal effects, as well as solvation/environmental influences, where my group has been active. The dependence of the NMR spectra on external magnetic and optical fields is also briefly touched on.
在过去的15年里,量子化学电子结构计算技术已经发展到这样一个阶段:对分子体系的磁响应特性进行系统的计算研究已成为常规程序。由于核磁共振(NMR)光谱法在许多科学领域具有极其重要的地位,其最突出的应用领域之一就是NMR光谱的谱参数。本文试图从可处理体系的大小、预期的精度以及影响即使是最精确的电子结构计算与实验结果一致性的各种因素等方面,对该领域的理论和实际计算的现状进行概述。这些因素包括相对论效应、热效应以及溶剂化/环境影响,而我的团队在这些方面一直很活跃。本文还简要探讨了NMR光谱对外加磁场和光场的依赖性。