Department of Chemistry - Ångström Laboratory , Uppsala University , P.O. Box 538, SE-751 21 Uppsala , Sweden.
Department of Chemistry - BMC , Uppsala University , P.O. Box 576, SE-751 23 Uppsala , Sweden.
J Chem Theory Comput. 2019 Nov 12;15(11):5925-5964. doi: 10.1021/acs.jctc.9b00532. Epub 2019 Oct 1.
In this Article we describe the OpenMolcas environment and invite the computational chemistry community to collaborate. The open-source project already includes a large number of new developments realized during the transition from the commercial MOLCAS product to the open-source platform. The paper initially describes the technical details of the new software development platform. This is followed by brief presentations of many new methods, implementations, and features of the OpenMolcas program suite. These developments include novel wave function methods such as stochastic complete active space self-consistent field, density matrix renormalization group (DMRG) methods, and hybrid multiconfigurational wave function and density functional theory models. Some of these implementations include an array of additional options and functionalities. The paper proceeds and describes developments related to explorations of potential energy surfaces. Here we present methods for the optimization of conical intersections, the simulation of adiabatic and nonadiabatic molecular dynamics, and interfaces to tools for semiclassical and quantum mechanical nuclear dynamics. Furthermore, the Article describes features unique to simulations of spectroscopic and magnetic phenomena such as the exact semiclassical description of the interaction between light and matter, various X-ray processes, magnetic circular dichroism, and properties. Finally, the paper describes a number of built-in and add-on features to support the OpenMolcas platform with postcalculation analysis and visualization, a multiscale simulation option using frozen-density embedding theory, and new electronic and muonic basis sets.
本文介绍了 OpenMolcas 环境,并邀请计算化学界进行合作。该开源项目已经包含了许多新的发展,这些发展是在从商业 MOLCAS 产品向开源平台过渡的过程中实现的。本文首先描述了新软件开发平台的技术细节。接着简要介绍了 OpenMolcas 程序套件的许多新方法、实现和功能。这些开发包括新的波函数方法,如随机完全活性空间自洽场、密度矩阵重整化群(DMRG)方法以及混合多组态波函数和密度泛函理论模型。其中一些实现包括一系列额外的选项和功能。本文继续描述与势能面探索相关的发展。在这里,我们提出了用于优化锥形交叉点、模拟绝热和非绝热分子动力学以及与半经典和量子力学核动力学工具接口的方法。此外,本文还介绍了模拟光谱和磁现象的独特功能,如光与物质相互作用的精确半经典描述、各种 X 射线过程、圆二色性和磁性质。最后,本文描述了一些内置和附加功能,以支持 OpenMolcas 平台的后计算分析和可视化、使用冻结密度嵌入理论的多尺度模拟选项以及新的电子和 muonic 基组。