Interdisciplinary Center for Scientific Computing, Heidelberg University, D-69120 Heidelberg, Germany.
Department of Physics, Chemistry and Pharmacy, University of Southern Denmark, DK-5230 Odense, Denmark.
J Chem Theory Comput. 2021 Jun 8;17(6):3445-3454. doi: 10.1021/acs.jctc.1c00225. Epub 2021 May 5.
We present open-source implementations of the linear-scaling fast multipole method (FMM) within the polarizable embedding (PE) model for efficient treatment of large polarizable environments in computational spectroscopy simulations. The implementations are tested for accuracy, efficiency, and usability on model systems as well as more realistic biomolecular systems. We explain how FMM parameters affect the calculation of molecular properties and show that PE calculations employing FMM can be carried out in a black-box manner. The efficiency of the linear-scaling approach is demonstrated by simulating the UV/vis spectrum of a chromophore in an environment of more than 1 million polarizable sites. Our implementations are interfaced to several open-source quantum chemistry programs, making computational spectroscopy simulations within the PE model and FMM available to a large variety of methods and a broad user base.
我们提出了在极化嵌入(PE)模型中用于计算光谱模拟中处理大极化环境的线性标度快速多极方法(FMM)的开源实现。这些实现经过了模型系统以及更现实的生物分子系统的准确性、效率和可用性测试。我们解释了 FMM 参数如何影响分子性质的计算,并展示了可以以黑盒方式进行使用 FMM 的 PE 计算。通过模拟超过 100 万个极化位点的环境中的发色团的紫外/可见光谱,展示了线性标度方法的效率。我们的实现与几个开源量子化学程序接口,使得在 PE 模型和 FMM 内进行计算光谱模拟可用于各种方法和广泛的用户群体。