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Extended Lagrangian Formulation of Charge-Constrained Tight-Binding Molecular Dynamics

机译:电荷约束的紧束缚分子动力学的扩展拉格朗日公式

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The extended Lagrangian Born-Oppenheimer molecular dynamics formalism [Niklasson, Phys. Rev. Lett., 2008, 100, 123004] has been applied to a tight-binding model under the constraint of local charge neutrality to yield microcanonical trajectories with both precise, long-term energy conservation and a reduced number of self-consistent field optimizations at each time step. The extended Lagrangian molecular dynamics formalism restores time reversal symmetry in the propagation of the electronic degrees of freedom, and it enables the efficient and accurate self-consistent optimization of the chemical potential and atomwise potential energy shifts in the on-site elements of the tight-binding Hamiltonian that are required when enforcing local charge neutrality. These capabilities are illustrated with microcanonical molecular dynamics simulations of a small metallic cluster using an sd-valent tight-binding model for titanium. The effects of weak dissipation on the propagation of the auxiliary degrees of freedom for the chemical potential and on-site Hamiltonian matrix elements that is used to counteract the accumulation of numerical noise during trajectories was also investigated.
机译:扩展的拉格朗日Born-Oppenheimer分子动力学形式论[Niklasson,Phys。 Rev. Lett。,2008,100,123004]已应用于局部电荷中性约束下的紧密绑定模型,以产生具有精确,长期的能量守恒和减少的自洽场优化数量的微规范轨迹在每个时间步。扩展的拉格朗日分子动力学形式主义在电子自由度的传播中恢复了时间逆向对称性,并实现了紧密位点现场元素的化学势和原子势能转移的高效,准确的自洽优化。强制执行本地电荷中性时需要绑定哈密顿量。使用钛的sd价紧密结合模型对小金属簇的微规范分子动力学模拟说明了这些功能。还研究了弱耗散对用于化学势的辅助自由度和现场汉密尔顿矩阵元素的传播的影响,该汉密尔顿矩阵元素用于抵消轨迹中数字噪声的累积。

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