Accelerating Quantum Anharmonic Vibrational Calculations by Atom-Specific Hybrid Basis Set-Based Potential Energy Surface Approach.

IF 2.7 2区 化学 Q3 CHEMISTRY, PHYSICAL The Journal of Physical Chemistry A Pub Date : 2025-01-30 Epub Date: 2025-01-19 DOI:10.1021/acs.jpca.4c04066
Mokshi Sharma, Dhiksha Sharma, Tapta Kanchan Roy
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Abstract

The development of accurate yet fast quantum mechanical methods to calculate the anharmonic vibrational spectra of large molecules is one of the major goals of ongoing developments in this field. This study extensively explores and validates a hybrid electronic basis set approach for anharmonic vibrational calculations, where the molecule is segregated into different computational layers, and such layers are then treated with different levels of electronic basis sets. Following the system-bath model, the atoms corresponding to the active sites are treated in more accurate but computationally slower, large basis set and the rest of the atoms in less accurate but computationally faster, small basis set to construct the anharmonic hybrid potential energy surface (PES). Such a hybrid protocol for constructing an anharmonic PES is named as the atom-specific hybrid basis set (ASHBS) approach. The accuracy of the ASHBS approach is tested and established by evaluating the harmonic and anharmonic frequencies of a set of four prototype molecules. Following the ASHBS approach, for a chosen active site, the transitions of the corresponding modes are found to be closer to that of a high basis set, with a majority of target modes displaying a mean absolute error of around 3.3 cm-1, while achieving the computational acceleration of 2-3 times. This study also provides insights into determining the optimal layer size to balance computational efficiency and accuracy, offering a suitable alternative, particularly for large molecules.

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基于原子特定混合基集的势能面方法加速量子非调和振动计算。
发展精确而快速的量子力学方法来计算大分子的非调和振动谱是该领域持续发展的主要目标之一。本研究广泛探索并验证了用于非调和振动计算的混合电子基集方法,其中分子被分离到不同的计算层,然后用不同水平的电子基集处理这些层。根据系统浴模型,对活性位点对应的原子进行更精确但计算速度较慢的大基集处理,对其余原子进行精度较低但计算速度较快的小基集处理,构建非调和混合势能面(PES)。这种构造非调和粒子群的混合协议被称为原子特异性混合基集(ASHBS)方法。通过对一组4个原型分子的谐波和非谐波频率进行评估,验证了ASHBS方法的准确性。采用ASHBS方法,对于选定的活性位点,发现相应模态的跃迁更接近于高基集,大多数目标模态的平均绝对误差在3.3 cm-1左右,同时实现了2-3倍的计算加速。该研究还提供了确定最佳层尺寸以平衡计算效率和准确性的见解,提供了合适的替代方案,特别是对于大分子。
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来源期刊
The Journal of Physical Chemistry A
The Journal of Physical Chemistry A 化学-物理:原子、分子和化学物理
CiteScore
5.20
自引率
10.30%
发文量
922
审稿时长
1.3 months
期刊介绍: The Journal of Physical Chemistry A is devoted to reporting new and original experimental and theoretical basic research of interest to physical chemists, biophysical chemists, and chemical physicists.
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