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Geometry optimization made simple with translation and rotation coordinates

机译:通过平移和旋转坐标简化了几何优化

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The effective description of molecular geometry is important for theoretical studies of intermolecular interactions. Here we introduce a new translation-rotation-internal coordinate (TRIC) system which explicitly includes the collective translations and rotations of molecules, or parts of molecules such as monomers or ligands, as degrees of freedom. The translations are described as the centroid position and the orientations are represented with the exponential map parameterization of quaternions. When TRIC is incorporated into geometry optimization calculations, the performance is consistently superior to existing coordinate systems for a diverse set of systems including water clusters, organic semiconductor donor-acceptor complexes, and small proteins, all of which are characterized by nontrivial intermolecular interactions. The method also introduces a new way to scan the molecular orientations while allowing orthogonal degrees of freedom to relax. Our findings indicate that an explicit description of molecular translation and rotation is a natural way to traverse the many-dimensional potential energy surface. Published by AIP Publishing.
机译:分子几何学的有效描述对于分子间相互作用的理论研究很重要。在这里,我们介绍一种新的平移-旋转-内部坐标(TRIC)系统,该系统明确包含分子或部分分子(例如单体或配体)的集体平移和旋转作为自由度。平移描述为质心位置,方向用四元数的指数映射参数化表示。将TRIC纳入几何优化计算后,其性能始终优于现有的坐标系统,适用于各种系统,包括水团簇,有机半导体供体-受体复合物和小蛋白质,所有这些均以非平凡的分子间相互作用为特征。该方法还引入了一种新的方式来扫描分子方向,同时允许正交自由度松弛。我们的发现表明,分子平移和旋转的明确描述是遍历多维势能表面的自然方法。由AIP Publishing发布。

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