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密度泛函理论下水中离子和纳米孔内离子的能量

Energies of ions in water and nanopores within density functional theory.

作者信息

Leung Kevin, Marsman Martijn

机构信息

Sandia National Laboratories, MS 1415, Albuquerque, New Mexico 87185, USA.

出版信息

J Chem Phys. 2007 Oct 21;127(15):154722. doi: 10.1063/1.2772244.

Abstract

Accurate calculations of electrostatic potentials and treatment of substrate polarizability are critical for predicting the permeation of ions inside water-filled nanopores. The ab initio molecular dynamics method, based on density functional theory (DFT), accounts for the polarizability of materials, water, and solutes, and it should be the method of choice for predicting accurate electrostatic energies of ions. In practice, DFT coupled with the use of periodic boundary conditions in a charged system leads to large energy shifts. Results obtained using different DFT packages may vary because of the way pseudopotentials and long-range electrostatics are implemented. Using maximally localized Wannier functions, we apply robust corrections that yield relatively unambiguous ion energies in select molecular and aqueous systems and inside carbon nanotubes. Large binding energies are predicted for ions in metallic carbon nanotube arrays, while Na+ and Cl- energies are found to exhibit asymmetry in water that is smaller than but comparable with those computed using nonpolarizable water force fields.

摘要

精确计算静电势以及处理底物极化率对于预测离子在充满水的纳米孔中的渗透至关重要。基于密度泛函理论(DFT)的从头算分子动力学方法考虑了材料、水和溶质的极化率,它应该是预测离子精确静电能的首选方法。在实际应用中,DFT与在带电系统中使用周期性边界条件相结合会导致较大的能量偏移。由于赝势和长程静电的实现方式不同,使用不同DFT软件包获得的结果可能会有所差异。我们使用最大局域化Wannier函数应用了稳健的校正,在选定的分子和水体系以及碳纳米管内部产生了相对明确的离子能量。预测金属碳纳米管阵列中的离子具有较大的结合能,而发现Na+和Cl-在水中的能量表现出的不对称性比使用非极化水势场计算出的要小,但具有可比性。

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