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用于红外特征的定制非谐势能面。

Tailored anharmonic potential energy surfaces for infrared signatures.

作者信息

Hellmers Janine, Czember Pascal, König Carolin

机构信息

Institut of Physical Chemistry and Electrochemistry, Leibniz University Hannover, Germany.

出版信息

Phys Chem Chem Phys. 2024 Dec 11;26(48):29732-29748. doi: 10.1039/d4cp02916j.

DOI:10.1039/d4cp02916j
PMID:39620265
Abstract

Accurately calculated infrared spectra are essential for supporting experimental interpretation, yet full-space anharmonic vibrational structure calculations are only feasible for a limited number of degrees of freedom. Fortunately, characteristic spectroscopic signatures are often dominated by a few key vibrations. We propose a computational protocol specifically tailoring high dimensional anharmonic potential energy surfaces for the accurate and efficient calculation of such spectral signatures with vibrational coupled cluster response theory. Our protocol focuses on the selection of appropriate coordinates for the relevant degrees of freedom and the identification of specific mode-coupling terms for the potential energy surface that require more thorough treatment. This includes applying different levels of electronic structure theory and selecting a restricted set of higher mode-coupling terms (> mode pairs). We validate this protocol on two spectral regions: the fundamental CO stretching vibrations in uracil and the fundamental OH stretchings in catechol. Our findings indicate that the convergence behaviour towards harmonic frequencies in the so-called FALCON algorithm is an effective indicator for the locality character of the relevant degrees of freedom. We find that the CO stretchings in uracil are better described using normal coordinates, while the description with local FALCON coordinates of the OH-stretching vibrations in catechol showed superior performances in VCC spectra calculations. Overall, our protocol offers valuable guidelines for accurate and efficient anharmonic calculation of vibrational spectral signatures.

摘要

精确计算的红外光谱对于支持实验解释至关重要,然而全空间非谐振动结构计算仅对有限数量的自由度可行。幸运的是,特征光谱特征通常由少数关键振动主导。我们提出了一种计算方案,专门为使用振动耦合簇响应理论准确高效地计算此类光谱特征量身定制高维非谐势能面。我们的方案侧重于为相关自由度选择合适的坐标,以及识别势能面中需要更深入处理的特定模式耦合项。这包括应用不同水平的电子结构理论和选择一组受限的高阶模式耦合项(> 模式对)。我们在两个光谱区域验证了该方案:尿嘧啶中的基本 C=O 伸缩振动和儿茶酚中的基本 OH 伸缩振动。我们的研究结果表明,在所谓的 FALCON 算法中向谐波频率的收敛行为是相关自由度局部性特征的有效指标。我们发现,使用正规坐标能更好地描述尿嘧啶中的 C=O 伸缩振动,而在 VCC 光谱计算中,用儿茶酚中 OH 伸缩振动的局部 FALCON 坐标描述表现出更优的性能。总体而言,我们的方案为准确高效地进行振动光谱特征的非谐计算提供了有价值的指导方针。

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