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首页> 外文期刊>The journal of physical chemistry, A. Molecules, spectroscopy, kinetics, environment, & general theory >Geometry optimization of radicaloid systems using improved virtual orbital-complete active space configuration interaction (IVO-CASCI) analytical gradient method
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Geometry optimization of radicaloid systems using improved virtual orbital-complete active space configuration interaction (IVO-CASCI) analytical gradient method

机译:利用改进的虚拟轨道-完全活动空间配置相互作用(IVO-CASCI)分析梯度方法对类比系统的几何优化

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The improved virtual orbital (IVO) complete active space (CAS) configuration interaction (IVO-CASCI) method is a simplified CAS self-consistent field (SCF), CASSCF, method. Unlike the CASSCF approach, the IVO-CASCI method does not require iterations beyond an initial SCF calculation, rendering the IVO-CASCI scheme computationally more tractable than the CASSCF method and devoid of the convergence problems that sometimes plague CASSCF calculations as the CAS size increases, while retaining all the essential positive benefits of the CASSCF method. Earlier applications demonstrate that the IVO-CASCI energies are at least as accurate as those from the CASSCF and provide the impetus for our recent development of the analytical derivative procedures that are necessary for a wide applicability of the IVO-CASCI approach. Here we test the ability of the analytic energy gradient IVO-CASCI approach (which can treat both closed- and open-shell molecules of arbitrary spin multiplicity) to compute the equilibrium geometries of four organic radicaloid species, namely, (i) the diradicals trimethylenemethane (TMM), 2,6-pyridyne, and the 2,6-pyridynium cation and (ii) a triradical 1,2,3-tridehydrobenzene (TDB), using various basis sets and different choices for the active space. Although these systems and related molecules have fascinated theoretical chemists for many years, their strong multireference character makes their description quite difficult with most standard many-body approaches. Thus, they provide ideal tests to assess the performance of the IVO-CASCI method. The present work demonstrates consistent agreement with far more expensive benchmark state-of-the-art ab initio calculations and thereby indicates that this new gradient method is able to describe the geometries of various radicaloids very accurately, even when small, but qualitatively correct, reference spaces are used. For example, the IVO-CASCI method leads to a monocyclic structure for the 2,6-isomers of the didehydropyridinium (pyridynium) cation and of didehydropyridine (pyridyne), while SCF and single-reference CCSD computations predict an incorrect bicyclic structure. The IVO-CASCI structures and relative stability for the ground ~2A_1 and excited ~2B_2 states of TDB also accord with the experimentally observed IR spectra and with other highly sophisticated theoretical calculations. The blend of accuracy and reduction in computational cost offered by the present IVO-CASCI analytical gradient method clearly demonstrates that the method provides a practical avenue for studying the geometries of various radicaloid species of different levels of complexity.
机译:改进的虚拟轨道(IVO)完整活动空间(CAS)配置交互(IVO-CASCI)方法是一种简化的CAS自洽场(SCF)CASSCF方法。与CASSCF方法不同,IVO-CASCI方法不需要初始SCF计算之外的迭代,这使IVO-CASCI方案在计算上比CASSCF方法更易于处理,并且没有会随着CAS大小增加而困扰CASSCF计算的收敛问题,同时保留CASSCF方法的所有基本的积极好处。较早的应用表明,IVO-CASCI能量至少与CASSCF的能量一样准确,并为我们最近开发的分析导数方法提供了动力,而这对于IVO-CASCI方法的广泛适用性是必需的。在这里,我们测试了解析能量梯度IVO-CASCI方法(可以处理任意自旋多重性的闭壳和开壳分子)计算四种有机自由基类物质(即(i)双自由基三亚甲基甲烷)的平衡几何的能力。 (TMM),2,6-吡啶和2,6-吡啶鎓阳离子,以及(ii)三基1,2,3-三氢化氢苯(TDB),使用不同的基集和不同的活动空间选择。尽管这些系统和相关分子多年来一直使理论化学家着迷,但它们的强多参考性使其在大多数标准的多体方法中很难描述。因此,它们提供了理想的测试来评估IVO-CASCI方法的性能。本工作证明了与昂贵得多的基准最新技术从头算的一致性,因此表明这种新的梯度方法能够非常精确地描述各种类比基的几何形状,即使是很小但在质量上正确的参考使用空格。例如,IVO-CASCI方法可生成二氢吡啶鎓(吡啶)阳离子和二氢吡啶(吡啶)的2,6-异构体的单环结构,而SCF和单参考CCSD计算可预测不正确的双环结构。 TDB的〜2A_1基态和〜2B_2激发态的IVO-CASCI结构和相对稳定性也符合实验观察到的红外光谱和其他高度复杂的理论计算。当前的IVO-CASCI分析梯度方法所提供的准确性与降低计算成本的完美结合清楚地表明,该方法为研究具有不同复杂程度的各种类自由基化合物的几何结构提供了实用的途径。

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