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首页> 外文期刊>The journal of physical chemistry, A. Molecules, spectroscopy, kinetics, environment, & general theory >Direct Scaling of Primitive Valence Force Constants: An Alternative Approach to Scaled Quantum Mechanical Force Fields
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Direct Scaling of Primitive Valence Force Constants: An Alternative Approach to Scaled Quantum Mechanical Force Fields

机译:原始价价常数的直接缩放:缩放量子力学力场的替代方法

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We present an alternative approach to the derivation of scaled quantum mechanical (SQM) force fields involving the direct scaling of individual primitive valence force constants from a full set of redundant valence coordinates. Our approach is completely general and more flexible than previous SQM schemes. Optimal scaling factors for various primitive stretching, bending, and torsional force constants are derived from a training set of 30 molecules containing C, O, N, H, and C1 and used to scale force constants for a further 30 molecules. Calculated vibrational frequencies are compared with experimental values for over 1500 fundamentals. Using the hybrid three-parameter B3-LYP density functional with the split-valence 6-31G↑(*) basis set, our scaling procedure gives an average error of less than 8.5 cm↑(-1) in the scaled frequencies. The average percentage error is under 1%.
机译:我们提出了一种可替代的方法,用于推导标度量子力学(SQM)力场,其中涉及从完整的冗余价态坐标集中直接缩放各个原始价态力常数。我们的方法是完全通用的,比以前的SQM方案更灵活。从包含C,O,N,H和C1的30个分子的训练集中得出用于各种原始拉伸,弯曲和扭转力常数的最佳比例因子,并将其用于按比例缩放另外30个分子的力常数。将计算出的振动频率与超过1500个基本原理的实验值进行比较。使用具有分裂价6-31G↑(*)基集的混合三参数B3-LYP密度泛函,我们的缩放过程在缩放频率上给出的平均误差小于8.5 cm↑(-1)。平均百分比误差小于1%。

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