Dahlem Center for Complex Quantum Systems, Physics Department, Freie Universität Berlin, Arnimallee 14, 14195 Berlin, Germany.
J Chem Phys. 2011 Dec 7;135(21):214107. doi: 10.1063/1.3664300.
We present a series of capping-potentials designed as link atoms to saturate dangling bonds at the quantum/classical interface within density functional theory-based hybrid QM/MM calculations. We aim at imitating the properties of different carbon-carbon bonds by means of monovalent analytic pseudopotentials. These effective potentials are optimized such that the perturbations of the quantum electronic density are minimized. This optimization is based on a stochastic scheme, which helps to avoid local minima trapping. For a series of common biomolecular groups, we find capping-potentials that outperform the more common hydrogen-capping in view of structural and spectroscopic properties. To demonstrate the transferability to complex systems, we also benchmark our potentials with a hydrogen-bonded dimer, yielding systematic improvements in structural and spectroscopic parameters.
我们提出了一系列盖帽电位,用作链接原子,以在基于密度泛函理论的混合 QM/MM 计算中的量子/经典界面处饱和悬键。我们旨在通过单价解析赝势模拟不同碳-碳键的性质。这些有效势经过优化,使量子电子密度的扰动最小化。这种优化基于一种随机方案,有助于避免局部最小陷阱。对于一系列常见的生物分子基团,我们找到了在结构和光谱性质方面优于更常见的氢盖帽的盖帽电位。为了证明其对复杂系统的可转移性,我们还用氢键二聚体对我们的势进行了基准测试,在结构和光谱参数方面取得了系统的改进。