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极化嵌入框架中的多组态自洽场方法。

The multi-configuration self-consistent field method within a polarizable embedded framework.

机构信息

Department of Physics, Chemistry and Pharmacy, University of Southern Denmark, Campusvej 55, 5230 Odense, Denmark.

出版信息

J Chem Phys. 2013 Jul 28;139(4):044101. doi: 10.1063/1.4811835.

Abstract

We present a detailed derivation of Multi-Configuration Self-Consistent Field (MCSCF) optimization and linear response equations within the polarizable embedding scheme: PE-MCSCF. The MCSCF model enables a proper description of multiconfigurational effects in reaction paths, spin systems, excited states, and other properties which cannot be described adequately with current implementations of polarizable embedding in density functional or coupled cluster theories. In the PE-MCSCF scheme the environment surrounding the central quantum mechanical system is represented by distributed multipole moments and anisotropic dipole-dipole polarizabilities. The PE-MCSCF model has been implemented in DALTON. As a preliminary application, the low lying valence states of acetone and uracil in water has been calculated using Complete Active Space Self-Consistent Field (CASSCF) wave functions. The dynamics of the water environment have been simulated using a series of snapshots generated from classical Molecular Dynamics. The calculated shifts from gas-phase to water display between good and excellent correlation with experiment and previous calculations. As an illustration of another area of potential applications we present calculations of electronic transitions in the transition metal complex, Fe(NO)(CN)5 in a micro-solvated environment. This system is highly multiconfigurational and the influence of solvation is significant.

摘要

我们提出了在极化嵌入方案(PE-MCSCF)中详细推导出多组态自洽场(MCSCF)优化和线性响应方程。MCSCF 模型能够在反应路径、自旋系统、激发态和其他无法用当前密度泛函或耦合簇理论中极化嵌入的实现来充分描述的性质中,对多组态效应进行适当描述。在 PE-MCSCF 方案中,中心量子力学系统周围的环境由分布式多极矩和各向异性偶极极化率表示。PE-MCSCF 模型已在 DALTON 中实现。作为初步应用,使用完全活性空间自洽场(CASSCF)波函数计算了丙酮和尿嘧啶在水中的低能价态。使用从经典分子动力学生成的一系列快照来模拟水环境的动力学。从气相到水的计算位移与实验和以前的计算具有良好到极好的相关性。作为另一个潜在应用领域的说明,我们展示了在微溶剂化环境中过渡金属配合物 Fe(NO)(CN)5中电子跃迁的计算。该体系高度多组态,溶剂化的影响显著。

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