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Assessing the distinguishable cluster approximation based on the triple bond-breaking in the nitrogen molecule

机译:基于氮分子中的三键断裂评估可区分的簇近似

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Obtaining the correct potential energy curves for the dissociation of multiple bonds is a challenging problem for ab initio methods which are affected by the choice of a spin-restricted reference function. Coupled cluster (CC) methods such as CCSD (coupled cluster singles and doubles model) and CCSD(T) (CCSD + perturbative triples) correctly predict the geometry and properties at equilibrium but the process of bond dissociation, particularly when more than one bond is simultaneously broken, is much more complicated. New modifications of CC theory suggest that the deleterious role of the reference function can be diminished, provided a particular subset of terms is retained in the CC equations. The Distinguishable Cluster (DC) approach of Kats and Manby [J. Chem. Phys. 139, 021102 (2013)], seemingly overcomes the deficiencies for some bond-dissociation problems and might be of use in quasi-degenerate situations in general. DC along with other approximate coupled cluster methods such as ACCD (approximate coupled cluster doubles), ACP-D45, ACP-D14, 2CC, and pCCSD(alpha, beta) (all defined in text) falls under a category of methods that are basically obtained by the deletion of some quadratic terms in the double excitation amplitude equation for CCD/CCSD (coupled cluster doubles model/coupled cluster singles and doubles model). Here these approximate methods, particularly those based on the DC approach, are studied in detail for the nitrogen molecule bond-breaking. The N-2 problem is further addressed with conventional single reference methods but based on spatial symmetry-broken restricted Hartree-Fock (HF) solutions to assess the use of these references for correlated calculations in the situation where CC methods using fully symmetry adapted SCF solutions fail. The distinguishable cluster method is generalized: 1) to different orbitals for different spins (unrestricted HF based DCD and DCSD), 2) by adding triples correction perturbatively (DCSD(T)) and iteratively (DCSDT-n), and 3) via an excited state approximation through the equation of motion (EOM) approach (EOM-DCD, EOM-DCSD). The EOM-CC method is used to identify lower-energy CC solutions to overcome singularities in the CC potential energy curves. It is also shown that UHF based CC and DC methods behave very similarly in bond-breaking of N-2, and that using spatially broken but spin preserving SCF references makes the CCSD solutions better than those for DCSD. (C) 2016 AIP Publishing LLC.
机译:对于从头开始的方法来说,获得正确的势能曲线以解离多个键是一个具有挑战性的问题,该方法受自旋限制性参考函数的选择影响。诸如CCSD(耦合集群单双模型)和CCSD(T)(CCSD +扰动三元组)之类的耦合簇(CC)方法可正确预测平衡状态下的几何结构和性质,但可预测键解离的过程,特别是当存在多个键时同时破碎,要复杂得多。 CC理论的新修改建议,只要CC方程中保留了特定的项子集,就可以减少参考函数的有害作用。 Kats和Manby的可分辨集群(DC)方法[J.化学物理139,021102(2013)],似乎克服了某些键解离问题的缺陷,通常可用于准简并的情况。 DC与其他近似耦合簇方法(例如,ACCD(近似耦合簇双打),ACP-D45,ACP-D14、2CC和pCCSD(alpha,beta)(均在文本中定义))一起属于以下几种方法:通过删除CCD / CCSD的双激发振幅方程中的一些二次项获得(耦合簇双打模型/耦合簇单双打模型)。在这里,将详细研究这些近似方法,特别是基于DC方法的近似方法,以解决氮分子键断裂的问题。 N-2问题可通过常规的单一参考方法进一步解决,但基于空间对称破损的受限Hartree-Fock(HF)解决方案,可在CC方法使​​用完全对称适应的SCF解决方案的情况下,评估这些参考在相关计算中的使用失败。可区分的聚类方法被概括为:1)针对不同自旋的不同轨道(基于HF的不受限制的DCD和DCSD),2)通过扰动地添加三重校正(DCSD(T))和迭代地添加三重校正(DCSDT-n),以及3)通过通过运动方程(EOM)方法(EOM-DCD,EOM-DCSD)进行激发态近似。 EOM-CC方法用于识别较低能量的CC解决方案,以克服CC势能曲线中的奇点。还显示了基于UHF的CC和DC方法在N-2的键断裂中的行为非常相似,并且使用空间断裂但保留自旋的SCF引用使CCSD解决方案优于DCSD。 (C)2016 AIP出版有限责任公司。

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