MultiPsi:一个python驱动的MCSCF程序,用于现代HPC环境中的光化学和光谱模拟

IF 16.8 2区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Mickaël G. Delcey
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引用次数: 3

摘要

我们提出了MultiPsi,一个开源的MCSCF程序,用于计算强相关系统的基态和激发态性质。该程序目前实现了一个通用的MCSCF代码,该代码具有使用状态平均或线性响应可用的激发状态。它是使用Python/C++以高度模块化的方式编写的,这使它非常适合作为开发平台,使新方法的原型制作变得容易,并作为使用交互式笔记本的教学工具。该代码也非常高效,并且是为使用混合OpenMP/MPI并行化的现代高性能计算环境而设计的。通过计算具有700多个原子的分子的CASSCF能量和线性响应,以及对4000多亿个行列式进行完全优化的传统CI计算,证明了这种效率。本文分类如下:
本文章由计算机程序翻译,如有差异,请以英文原文为准。

MultiPsi: A python-driven MCSCF program for photochemistry and spectroscopy simulations on modern HPC environments

MultiPsi: A python-driven MCSCF program for photochemistry and spectroscopy simulations on modern HPC environments

We present MultiPsi, an open-source MCSCF program for the calculation of ground and excited states properties of strongly correlated systems. The program currently implements a general MCSCF code with excited states available using either state-averaging or linear response. It is written in a highly modular fashion using Python/C++ which makes it well suited as a development platform, enabling easy prototyping of novel methods, and as a teaching tool using interactive notebooks. The code is also very efficient and designed for modern high-performance computing environments using hybrid OpenMP/MPI parallelization. This efficiency is demonstrated with the calculation of the CASSCF energy and linear response of a molecule with more than 700 atoms as well as a fully optimized conventional CI calculation on more than 400 billion determinants.

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来源期刊
Wiley Interdisciplinary Reviews: Computational Molecular Science
Wiley Interdisciplinary Reviews: Computational Molecular Science CHEMISTRY, MULTIDISCIPLINARY-MATHEMATICAL & COMPUTATIONAL BIOLOGY
CiteScore
28.90
自引率
1.80%
发文量
52
审稿时长
6-12 weeks
期刊介绍: Computational molecular sciences harness the power of rigorous chemical and physical theories, employing computer-based modeling, specialized hardware, software development, algorithm design, and database management to explore and illuminate every facet of molecular sciences. These interdisciplinary approaches form a bridge between chemistry, biology, and materials sciences, establishing connections with adjacent application-driven fields in both chemistry and biology. WIREs Computational Molecular Science stands as a platform to comprehensively review and spotlight research from these dynamic and interconnected fields.
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