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Next generation extended Lagrangian first principles molecular dynamics

机译:下一代扩展拉格朗日第一个原则分子动力学

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Extended Lagrangian Born-Oppenheimer molecular dynamics [A. M. N. Niklasson, Phys. Rev. Lett. 100, 123004 ( 2008)] is formulated for general Hohenberg-Kohn density-functional theory and compared with the extended Lagrangian framework of first principles molecular dynamics by Car and Parrinello [Phys. Rev. Lett. 55, 2471 ( 1985)]. It is shownhowextended Lagrangian Born-Oppenheimer molecular dynamics overcomes several shortcomings of regular, direct Born-Oppenheimer molecular dynamics, while improving or maintaining important features of Car-Parrinello simulations. The accuracy of the electronic degrees of freedom in extended Lagrangian Born-Oppenheimer molecular dynamics, with respect to the exact Born-Oppenheimer solution, is of second-order in the size of the integration time step and of fourth order in the potential energy surface. Improved stability over recent formulations of extended Lagrangian Born-Oppenheimer molecular dynamics is achieved by generalizing the theory to finite temperature ensembles, using fractional occupation numbers in the calculation of the inner-product kernel of the extended harmonic oscillator that appears as a preconditioner in the electronic equations of motion. Material systems that normally exhibit slowself-consistent field convergence can be simulated using integration time steps of the same order as in direct Born-Oppenheimer molecular dynamics, but without the requirement of an iterative, non-linear electronic ground-state optimization prior to the force evaluations and without a systematic drift in the total energy. In combination with proposed low-rank and on the fly updates of the kernel, this formulation provides an efficient and general framework for quantum-based Born-Oppenheimer molecular dynamics simulations. Published by AIP Publishing.
机译:扩展拉格朗日出生 - oppenheimer分子动力学[A. M. N. Niklasson,Phy。 rev. lett。为General Hohenberg-Kohn密度功能理论制定了100,123004(2008),并与汽车和帕尔诺列洛的第一个原则分子动力学的扩展拉格朗日框架相比。 rev. lett。 55,2471(1985)]。示出了拉格朗日出生的oppenheimer分子动力学克服了常规直接出生的oppenheimer分子动力学的几个缺点,同时改善或维持汽车帕尔诺勒仿模的重要特征。在扩展拉格朗日博恩 - 奥本海默分子动力学电子自由度的精确度,对于确切的Born-奥本海默溶液,是在积分时间步长的大小,并在势能表面的四阶的二阶的。在最近扩展拉格朗日博恩 - 奥本海默分子动力学的制剂改善的稳定性是通过在扩展谐波振荡器的内积内核的计算概括理论来有限温度合奏,采用分数占有数实现了显示为电子预处理器运动方程。通常使用与直接oppenheimer分子动态相同顺序相同的顺序的集成时间步长,但是可以在直接出生的oppenheimer分子动力学中的整合时间步长模拟材料系统,但是在力之前不需要迭代,非线性电子地面优化的要求评估和总能量中的系统漂移。结合所提出的低级和内核的飞行更新,该配方为量子的出生的oppenheimer分子动力学模拟提供了一种有效和一般的框架。通过AIP发布发布。

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