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Energy Landscapes for Electronic Structure

机译:电子结构的能量景观

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Orbital-optimized multiple self-consistent-field (SCF) solutions are increasingly being interpreted as mean-field approximations of diabatic or excited electronic states. However, surprisingly little is known about the topology of the electronic energy landscape from which these multiple solutions emerge. In this contribution, we extend energy landscape methods, developed for investigating molecular potential energy surfaces, to investigate and understand the structure of the electronic SCF energy surface. Using analytic gradients and Hessians, we systematically identify every real SCF minimum for the prototypical H_(4) molecule with the 3-21G basis set, and the index-1 saddles that connect these minima. The resulting SCF energy landscape has a double-funnel structure, with no high-energy local minima. The effect of molecular symmetry on the pathways is analyzed, and we demonstrate how the SCF energy landscape changes with the basis set, SCF potential, molecular structure, and spin state. These results provide guiding principles for the future development of algorithms to systematically identify multiple SCF solutions from an orbital optimization perspective.
机译:轨道优化多重自洽场(SCF)解越来越多地被解释为非绝热或激发电子态的平均场近似。然而,令人惊讶的是,人们对电子能源领域的拓扑结构知之甚少,正是这种拓扑结构催生了多种解决方案。在本文中,我们扩展了用于研究分子势能表面的能量景观方法,以研究和理解电子SCF能量表面的结构。利用分析梯度和Hessians,我们系统地识别了具有3-21G基集的原型H_4分子的每个实际SCF最小值,以及连接这些最小值的指数-1鞍。由此产生的SCF能源景观具有双漏斗结构,没有高能局部极小值。分析了分子对称性对路径的影响,我们展示了SCF能量景观如何随基组、SCF势、分子结构和自旋状态而变化。这些结果为从轨道优化角度系统识别多个SCF解的算法的未来发展提供了指导原则。

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