论文标题
优化原子和分子响应特性的量子drude振荡器
Optimized Quantum Drude Oscillators for Atomic and Molecular Response Properties
论文作者
论文摘要
量子drude振荡器(QDO)是一种有效但准确的粗粒方法,已广泛用于模拟原子和分子的电子和光学响应特性,以及它们之间的极化和分散相互作用。三个有效参数(频率,质量,电荷)完全表征了QDO Hamiltonian,并进行了调整以重现响应特性。但是,耦合QDOS在许多原子系统上的飙升成功基本上是无法解释的,并且尚未建立原子/分子和振荡器之间的最佳映射。在这里,我们提出一个优化的参数化(OQDO),其中仅使用偶极性能固定参数。对于元素的周期表以及小分子,我们的OQDO模型准确地再现原子(空间)极化电位和多极色散系数,从而阐明了(BIO)分子模拟的下一代量子力场的发展中所提出模型的高希望。
The quantum Drude oscillator (QDO) is an efficient yet accurate coarse-grained approach that has been widely used to model electronic and optical response properties of atoms and molecules, as well as polarization and dispersion interactions between them. Three effective parameters (frequency, mass, charge) fully characterize the QDO Hamiltonian and are adjusted to reproduce response properties. However, the soaring success of coupled QDOs for many-atom systems remains fundamentally unexplained and the optimal mapping between atoms/molecules and oscillators has not been established. Here, we present an optimized parametrization (OQDO) where the parameters are fixed by using only dipolar properties. For the periodic table of elements as well as small molecules, our OQDO model accurately reproduces atomic (spatial) polarization potentials and multipolar dispersion coefficients, elucidating the high promise of the presented model in the development of next-generation quantum-mechanical force fields for (bio)molecular simulations.