Watrous Alexandria G, Westbrook Brent R, Fortenberry Ryan C
Department of Chemistry & Biochemistry, University of Mississippi, University, Mississippi 38677-1848, United States.
J Phys Chem A. 2021 Dec 16;125(49):10532-10540. doi: 10.1021/acs.jpca.1c08355. Epub 2021 Nov 30.
The F12-TZ-cCR quartic force field (QFF) methodology, defined here as CCSD(T)-F12b/cc-pCVTZ-F12 with further corrections for relativity, is introduced as a cheaper and even more accurate alternative to more costly composite QFF methods like those containing complete basis set extrapolations within canonical coupled cluster theory. F12-TZ-cCR QFFs produce and vibrationally averaged principal rotational constants within 7.5 MHz of gas-phase experimental values for tetraatomic and larger molecules, offering higher accuracy in these constants than the previous composite methods. In addition, F12-TZ-cCR offers an order of magnitude decrease in the computational cost of highly accurate QFF methodologies accompanying this increase in accuracy. An additional order of magnitude in cost reduction is achieved in the F12-DZ-cCR method, while also matching the accuracy of the traditional composite method's and constants. Finally, F12-DZ and F12-TZ are benchmarked on the same test set, revealing that both methods can provide anharmonic vibrational frequencies that are comparable in accuracy to all three of the more expensive methodologies, although their rotational constants lag behind. Hence, the present work demonstrates that highly accurate theoretical rovibrational spectral data can be obtained for a fraction of the cost of conventional QFF methodologies, extending the applicability of QFFs to larger molecules.
本文引入了F12-TZ-cCR四次方力场(QFF)方法,定义为CCSD(T)-F12b/cc-pCVTZ-F12并对相对论效应进行了进一步修正,它是一种比包含规范耦合簇理论中完整基组外推的更昂贵的复合QFF方法更便宜且更精确的替代方法。对于四原子及更大的分子,F12-TZ-cCR QFFs给出的转动常数和振动平均主转动常数与气相实验值的偏差在7.5 MHz以内,在这些常数方面比之前的复合方法具有更高的精度。此外,F12-TZ-cCR在提高精度的同时,高精度QFF方法的计算成本降低了一个数量级。在F12-DZ-cCR方法中成本又降低了一个数量级,同时还能与传统复合方法的转动常数和精度相匹配。最后,在同一测试集上对F12-DZ和F12-TZ进行了基准测试,结果表明这两种方法都能提供精度与三种更昂贵方法相当的非谐振动频率,尽管它们的转动常数稍差。因此,本研究表明,只需花费传统QFF方法一小部分成本就能获得高精度的理论振转光谱数据,从而将QFFs的适用性扩展到更大的分子。