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From Classical to Quantum and Back: A Hamiltonian Scheme for Adaptive Multiresolution Classical/Path-Integral Simulations

机译:从经典到量子,再到后面:自适应多分辨率经典/路径积分模拟的哈密顿方案

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Quantum delocalization of atomic nuclei affects the physical properties of many hydrogen-rich liquids and biological systems even at room temperature. In computer simulations, quantum nuclei can be modeled via the path-integral formulation of quantum statistical mechanics, which implies a substantial increase in computational overhead. By restricting the quantum description to a small spatial region, this cost can be significantly reduced. Herein, we derive a bottom-up, rigorous, Hamiltonian-based scheme that allows molecules to change from quantum to classical and vice versa on the fly as they diffuse through the system, both reducing overhead and making quantum grand-canonical simulations possible. The method is validated via simulations of low-temperature parahydrogen. Our adaptive resolution approach paves the way to efficient quantum simulations of biomolecules, membranes, and interfaces.
机译:即使在室温下,原子核的量子离域化也会影响许多富氢液体和生物系统的物理特性。在计算机仿真中,可以通过量子统计力学的路径积分公式对量子核进行建模,这意味着计算开销会大大增加。通过将量子描述限制在较小的空间区域,可以显着降低该成本。本文中,我们推导了一种自下而上的,严格的,基于哈密顿原理的方案,该方案允许分子在扩散通过系统时动态地从量子变为经典,反之亦然,从而不仅减少了开销,而且使量子大经典模拟成为可能。该方法通过低温对氢的模拟得到验证。我们的自适应分辨率方法为生物分子,膜和界面的高效量子模拟铺平了道路。

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