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首页> 外文期刊>The Journal of Chemical Physics >Gauge-origin independent calculation of magnetizabilities and rotational g tensors at the coupled-cluster level
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Gauge-origin independent calculation of magnetizabilities and rotational g tensors at the coupled-cluster level

机译:耦合簇水平的磁化率和旋转g张量的量规原点独立计算

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摘要

An implementation of the gauge-origin independent calculation of magnetizabilities and rotational g tensors at the coupled-cluster (CC) level is presented. The properties of interest are obtained as second derivatives of the energy with respect to the external magnetic field (in the case of the magnetizability) or with respect to magnetic field and rotational angular momentum (in the case of the rotational g tensor), while gauge-origin independence and fast basis-set convergence are ensured by using gauge-including atomic orbitals (London atomic orbitals) as well as their extension to treat rotational perturbations (rotational London atomic orbitals). The implementation within our existing CC analytic second-derivative code is described, focusing on the required modifications concerning integral evaluation and treatment of the unperturbed and perturbed two-particle density matrices. An extensive set of test calculations for LiH and BH (up to the full configuration-interaction limit), for a series of simple hydrides (HF, H2O, NH3, and CH4) as well as the more challenging molecules CO, N-2, and O-3 [employing the CC singles and doubles (CCSD) and the CCSD approximation augmented by a perturbative treatment of triple excitations] demonstrates the importance of electron correlation for high-accuracy predictions of magnetizabilities and rotational g tensors. (c) 2007 American Institute of Physics.
机译:提出了在耦合簇(CC)级别实现磁化率和旋转g张量的轨距独立计算的实现。相对于外部磁场(在磁化性的情况下)或相对于磁场和旋转角动量(在旋转g张量的情况下)的能量的二阶导数,获得感兴趣的特性通过使用包括轨距在内的原子轨道(伦敦原子轨道)及其扩展来处理旋转扰动(旋转伦敦原子轨道),可以确保原始的独立性和快速的基集收敛。描述了在我们现有的CC解析二阶导数代码中的实现方式,重点介绍了有关整体评估和对未扰动和扰动的两粒子密度矩阵进行处理的所需修改。针对一系列简单的氢化物(HF,H2O,NH3和CH4)以及更具挑战性的分子CO,N-2,LiH和BH(达到完整的构型相互作用极限)进行了广泛的测试计算O-3和O-3 [采用CC单打和双打(CCSD)和通过三次激发的扰动处理增强了CCSD逼近]证明了电子相关性对于高精度预测磁化强度和旋转g张量的重要性。 (c)2007年美国物理研究所。

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