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Toward Hamiltonian Adaptive QM/MM: Accurate Solvent Structures Using Many-Body Potentials

机译:迈向汉密尔顿自适应QM / MM:使用多体势的精确溶剂结构

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Adaptive quantum mechanical (QM)/molecular mechanical (MM) methods enable efficient molecular simulations of chemistry in solution. Reactive subregions are modeled with an accurate QM potential energy expression while the rest of the system is described in a more approximate manner (MM). As solvent molecules diffuse in and out of the reactive region, they are gradually included into (and excluded from) the QM expression. It would be desirable to model such a system with a single adaptive Hamiltonian, but thus far this has resulted in distorted structures at the boundary between the two regions. Solving this long outstanding problem will allow microcanonical adaptive QM/MM simulations that can be used to obtain vibrational spectra and dynamical properties. The difficulty lies in the complex QM potential energy expression, with a many-body expansion that contains higher order terms. Here, we outline a Hamiltonian adaptive multiscale scheme within the framework of many-body potentials. The adaptive expressions are entirely general, and complementary to all standard (nonadaptive) QM/MM embedding schemes available. We demonstrate the merit of our approach on a molecular system defined by two different MM potentials (MM/MM'). For the long-range interactions a numerical scheme is used (particle mesh Ewald), which yields energy expressions that are many-body in nature. Our Hamiltonian approach is the first to provide both energy conservation and the correct solvent structure everywhere in this system.
机译:自适应量子力学(QM)/分子力学(MM)方法可实现溶液中化学反应的高效分子模拟。用准确的QM势能表达式对反应分区进行建模,同时以更近似的方式(MM)描述系统的其余部分。随着溶剂分子扩散进入和扩散出反应区域,它们逐渐被纳入QM表达(并从中排除)。希望用单个自适应哈密顿量对这种系统进行建模,但是到目前为止,这已导致两个区域之间的边界处的结构变形。解决这一长期未解决的问题将允许微规范的自适应QM / MM仿真,该仿真可用于获取振动谱和动力学特性。困难在于复杂的QM势能表达式,其中包含高阶项的多体展开。在这里,我们在多体势的框架内概述了哈密顿自适应多尺度方案。自适应表达式是完全通用的,并且与所有可用的标准(非自适应)QM / MM嵌入方案互补。我们展示了我们的方法在由两个不同的MM电位(MM / MM')定义的分子系统上的优点。对于长距离相互作用,使用了一种数值方案(粒子网格Ewald),其产生的能量表达式本质上是多体的。我们的哈密顿方法是第一个在该系统中各处都提供节能和正确溶剂结构的方法。

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