首页> 外文期刊>Journal of chemical theory and computation: JCTC >Adaptive Switching of Interaction Potentials in the Time Domain: An Extended Lagrangian Approach Tailored to Transmute Force Field to QM/MM Simulations and Back
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Adaptive Switching of Interaction Potentials in the Time Domain: An Extended Lagrangian Approach Tailored to Transmute Force Field to QM/MM Simulations and Back

机译:时域交互作用电位的自适应切换:一种扩展的拉格朗日方法,旨在将力场转换为QM / MM模拟并返回

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An extended Lagrangian formalism that allows for a smooth transition between two different descriptions of interactions during a molecular dynamics simulation is presented. This time-adaptive method is particularly useful in the context of multiscale simulation as it provides a sound recipe to switch on demand between different hierarchical levels of theory, for instance between ab initio ("QM") and force field ("MM") descriptions of a given (sub)system in the course of a molecular dynamics simulation. The equations of motion can be integrated straightforwardly using the usual propagators, such as the Verlet algorithm. First test cases include a bath of harmonic oscillators, of which a subset is switched to a different force constant and/or equilibrium position, as well as an all-MM to QM/MM transition in a hydrogen-bonded water dimer. The method is then applied to a smectic 8AB8 liquid crystal and is shown to be able to switch dynamically a preselected 8AB8 molecule from an all -MM to a QM/MM description which involves partition boundaries through covalent bonds. These examples show that the extended Lagrangian approach is not only easy to implement into existing code but that it is also efficient and robust. The technique moreover provides easy access to a conserved energy quantity, also in cases when Nose-Hoover chain thermostatting is used throughout dynamical switching. A simple quadratic driving potential proves to be sufficient to guarantee a smooth transition whose time scale can be easily tuned by varying the fictitious mass parameter associated with the auxiliary variable used to extend the Lagrangian. The method is general and can be applied to time-adaptive switching on demand between two different levels of theory within the framework of hybrid scale-bridging simulations.
机译:提出了一种扩展的拉格朗日形式论,它允许在分子动力学模拟过程中在相互作用的两个不同描述之间进行平滑过渡。这种具有时间适应性的方法在多尺度模拟的环境中特别有用,因为它提供了一个合理的配方,可以在不同的理论层次之间(例如从头开始(“ QM”)和力场(“ MM”)之间进行切换)分子动力学模拟过程中给定(子系统)的结构。运动方程可以使用常用的传播子(例如Verlet算法)直接集成。第一个测试案例包括一个谐波振荡器浴,其中一个子集被切换到不同的力常数和/或平衡位置,以及在氢键水二聚体中从MM到QM / MM的全部过渡。然后将该方法应用于近晶8AB8液晶,并显示该方法能够将预选的8AB8分子从全-MM动态转换为涉及通过共价键进行分配边界的QM / MM描述。这些示例表明,扩展的拉格朗日方法不仅易于实现到现有代码中,而且高效且健壮。此外,在整个动态切换过程中使用鼻-胡佛链式恒温器的情况下,该技术还可以轻松获取节省的能量。事实证明,简单的二次驱动电位就足以保证平稳过渡,通过改变与扩展拉格朗日数的辅助变量关联的虚拟质量参数,可以轻松调整其时标。该方法是通用的,可以应用于混合比例桥接模拟框架内两个不同理论水平之间的时间自适应按需切换。

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