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Adaptive frozen orbital treatment for the fragment molecular orbital method combined with density-functional tight-binding

机译:用于片段分子轨道法的适应性冷冻轨道处理与密度官能紧密结合

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摘要

The exactly analytic gradient is derived and implemented for the fragment molecular orbital (FMO) method combined with density-functional tight-binding (DFTB) using adaptive frozen orbitals. The response contributions which arise from freezing detached molecular orbitals on the border between fragments are computed by solving Z-vector equations. The accuracy of the energy, its gradient, and optimized structures is verified on a set of representative inorganic materials and polypeptides. FMO-DFTB is applied to optimize the structure of a silicon nano-wire, and the results are compared to those of density functional theory and experiment. FMO accelerates the DFTB calculation of a boron nitride nano-ring with 7872 atoms by a factor of 406. Molecular dynamics simulations using FMO-DFTB applied to a 10.7 mu m chain of boron nitride nano-rings, consisting of about 1.2 x 10(6) atoms, reveal the rippling and twisting of nano-rings at room temperature. Published by AIP Publishing.
机译:用于使用适应性冷冻轨道与密度官能紧密(DFTB)结合的片段分子轨道(FMO)方法衍生和实施恰好分析梯度。 通过求解Z-载体方程来计算从冻结分子轨道上冻结分子轨道的响应贡献。 在一组代表性无机材料和多肽上验证了能量,梯度和优化结构的精度。 应用FMO-DFTB以优化硅纳米线的结构,并将结果与密度泛函理论和实验进行比较。 FMO通过7872原子的硼氮化物纳米环的DFTB计算通过406倍。使用FMO-DFTB的分子动力学模拟应用于10.7μm的氮化硼纳环链,由约1.2×10组成(6 )原子,揭示室温下纳米环的波纹和扭曲。 通过AIP发布发布。

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