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Torsional path integral Monte Carlo method for the quantum simulation of large molecules

机译:大分子量子模拟的扭转路径积分蒙特卡罗方法

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摘要

A molecular application is introduced for calculating quantum statistical mechanical expectation values of large molecules at nonzero temperatures. The Torsional Path Integral Monte Carlo (TPIMC) technique applies an uncoupled winding number formalism to the torsional degrees of freedom in molecular systems. The internal energy of the molecules ethane, n-butane, n-octane, and enkephalin are calculated at standard temperature using the TPIMC technique and compared to the expectation values obtained using the harmonic oscillator approximation and a variational technique. All studied molecules exhibited significant quantum mechanical contributions to their internal energy expectation values according to the TPIMC technique. The harmonic oscillator approximation approach to calculating the internal energy performs well for the molecules presented in this study but is limited by its neglect of both anharmonicity effects and the potential coupling of intramolecular torsions.
机译:介绍了一种分子应用程序,用于计算非零温度下大分子的量子统计机械期望值。扭转路径积分蒙特卡洛(TPIMC)技术将无耦合的绕组数形式主义应用于分子系统中的扭转自由度。使用TPIMC技术在标准温度下计算乙烷,正丁烷,正辛烷和脑啡肽分子的内部能,并将其与使用谐波振荡器近似法和变分技术获得的期望值进行比较。根据TPIMC技术,所有研究的分子均对其内部能量期望值表现出显着的量子力学贡献。谐波振荡器逼近法用于计算内部能量对本研究中提出的分子表现良好,但受到其对非谐效应的忽略以及分子内扭转的潜在耦合的限制。

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