Niklasson Anders M N, Tymczak C J, Challacombe Matt
Theoretical Division, Los Alamos National Laboratory, Los Alamos, NM 87545, USA.
Phys Rev Lett. 2006 Sep 22;97(12):123001. doi: 10.1103/PhysRevLett.97.123001. Epub 2006 Sep 18.
We present a time-reversible Born-Oppenheimer molecular dynamics scheme, based on self-consistent Hartree-Fock or density functional theory, where both the nuclear and the electronic degrees of freedom are propagated in time. We show how a time-reversible adiabatic propagation of the electronic degrees of freedom is possible despite the nonlinearity and incompleteness of the self-consistent field procedure. With a time-reversible lossless propagation the simulated dynamics is stabilized with respect to a systematic long-term energy drift and the number of self-consistency cycles can be kept low thanks to a good initial guess given from the electronic propagation. The proposed molecular dynamics scheme therefore combines a low computational cost with a physically correct time-reversible representation, which preserves a detailed balance between propagation forwards and backwards in time.
我们提出了一种基于自洽哈特里-福克或密度泛函理论的时间可逆玻恩-奥本海默分子动力学方案,其中核自由度和电子自由度都随时间演化。我们展示了尽管自洽场过程存在非线性和不完整性,但电子自由度的时间可逆绝热演化是如何实现的。通过时间可逆无损演化,模拟动力学相对于系统的长期能量漂移得以稳定,并且由于电子演化给出的良好初始猜测,自洽循环的次数可以保持在较低水平。因此,所提出的分子动力学方案将低计算成本与物理上正确的时间可逆表示相结合,在时间向前和向后的演化之间保持了细致平衡。