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Relaxed active space: Fixing tailored-CC with high order coupled cluster. i

机译:轻松的活动空间:用高阶耦合簇修复量身定制的CC。一世

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Several single reference (SR-CC) coupled cluster methods are shown to work for traditionally multi-reference (MR) problems such as bond breaking subject to restricted Hartree-Fock (RHF) references. The correlated methods can successfully describe any MR problem with enough higher order clusters: singles and doubles (CCSD), singles, doubles and triples (CCSDT), singles, doubles, triples, and quadruples (CCSDTQ), etc. However, due to the steep increase in the computational cost, it is not practical to do larger systems or to use large basis sets without active space partitioning. In this study, the orbital space is partitioned into an active space subject to an unambiguous statistical criteria to span the MR behavior which defines an extended space to let the active space relax. The rest is considered the external space. The extended space is treated with CCSDT and the external space with CCSD. An automated scheme for determining the extended space is presented and evaluated. We build upon the tailored-CC scheme of Hino and address its main shortcoming of neglecting the coupling between the active space and the rest of the orbital space which results in loss of accuracy as well as a pronounced nonparallelism error (NPE). The automated scheme makes it unnecessary for the user to judge whether a chosen active space is sufficient to correctly solve the problem. We illustrate this method for the hydrogen fluoride and fluorine molecule ground state dissociation potentials using the extended space partitioning methods. Experimental accuracy for the dissociation energy is achieved at a small fraction of the cost of doing a full CCSDT calculation. This approach is easily amendable to higher order clusters which are required for double and triple bond breaking and other strongly multi-reference systems.
机译:显示了几种单参考(SR-CC)耦合群集方法可用于传统的多参考(MR)问题,例如受受限Hartree-Fock(RHF)参考约束的键断裂。相关方法可以成功地描述任何具有足够高阶簇的MR问题:单打和双打(CCSD),单打,双打和三重(CCSDT),单打,双打,三重和四倍(CCSDTQ)等。但是,由于随着计算成本的急剧增加,在没有活动空间划分的情况下,使用大型系统或使用大型基础集是不切实际的。在这项研究中,根据明确的统计标准将轨道空间划分为一个活动空间,以跨越MR行为,该行为定义了一个扩展空间,以使活动空间放松。其余被视为外部空间。扩展空间用CCSDT处理,外部空间用CCSD处理。提出并评估了确定扩展空间的自动化方案。我们以日野的量身定制的CC方案为基础,并解决了其主要缺点,即忽略了活动空间与其余轨道空间之间的耦合,这导致精度损失以及明显的非平行误差(NPE)。自动方案使用户不必判断所选的活动空间是否足以正确解决问题。我们用扩展空间分配方法说明了氟化氢和氟分子基态解离电势的这种方法。离解能的实验精度仅需进行完整CCSDT计算的一小部分费用即可实现。这种方法很容易修改为双键和三键断裂以及其他强多参考系统所需的高阶簇。

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