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首页> 外文期刊>The Journal of Chemical Physics >Computation of methodology-independent single-ion solvation properties from molecular simulations. III. Correction terms for the solvation free energies, enthalpies, entropies, heat capacities, volumes, compressibilities, and expansivities of solvated ions
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Computation of methodology-independent single-ion solvation properties from molecular simulations. III. Correction terms for the solvation free energies, enthalpies, entropies, heat capacities, volumes, compressibilities, and expansivities of solvated ions

机译:通过分子模拟计算方法学无关的单离子溶剂化性质。三,溶剂化离子的自由能,焓,熵,热容量,体积,可压缩性和膨胀性的校正项

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The raw single-ion solvation free energies computed from atomistic (explicit-solvent) simulations are extremely sensitive to the boundary conditions (finite or periodic system, system or box size) and treatment of electrostatic interactions (Coulombic, lattice-sum, or cutoff-based) used during these simulations. However, as shown by Kastenholz and Hünenberger [J. Chem. Phys. 124, 224501 (2006)]10.1529/biophysj.106.083667, correction terms can be derived for the effects of: (A) an incorrect solvent polarization around the ion and an incomplete or/and inexact interaction of the ion with the polarized solvent due to the use of an approximate (not strictly Coulombic) electrostatic scheme; (B) the finite-size or artificial periodicity of the simulated system; (C) an improper summation scheme to evaluate the potential at the ion site, and the possible presence of a polarized air-liquid interface or of a constraint of vanishing average electrostatic potential in the simulated system; and (D) an inaccurate dielectric permittivity of the employed solvent model. Comparison with standard experimental data also requires the inclusion of appropriate cavity-formation and standard-state correction terms. In the present study, this correction scheme is extended by: (i) providing simple approximate analytical expressions (empirically-fitted) for the correction terms that were evaluated numerically in the above scheme (continuum-electrostatics calculations); (ii) providing correction terms for derivative thermodynamic single-ion solvation properties (and corresponding partial molar variables in solution), namely, the enthalpy, entropy, isobaric heat capacity, volume, isothermal compressibility, and isobaric expansivity (including appropriate standard-state correction terms). The ability of the correction scheme to produce methodology-independent single-ion solvation free energies based on atomistic simulations is tested in the case of Na+ hydration, and the nature and magnitude of the correction terms for derivative thermodynamic properties is assessed numerically.
机译:根据原子性(显式溶剂)模拟计算得出的原始单离子溶剂化自由能对边界条件(有限或周期性系统,系统或盒大小)和静电相互作用(库仑,晶格和或截止)的处理极为敏感。在这些模拟中使用)。然而,正如Kastenholz和Hünenberger[J.化学物理124,224501(2006)] 10.1529 / biophysj.106.083667,可以针对以下影响推导出校正项:(A)离子周围的溶剂极化不正确,以及由于以下原因导致离子与极化溶剂的相互作用不完全或不完全:使用近似(严格来说不是库仑)静电方案; (B)模拟系统的有限大小或人工周期性; (C)用于评估离子位点电势的不正确的求和方案,以及在模拟系统中是否存在极化的气液界面或平均静电势消失的限制; (D)所用溶剂模型的介电常数不准确。与标准实验数据的比较还需要包括适当的空穴形成和标准状态校正项。在本研究中,通过以下方式扩展了该校正方案:(i)为在上述方案中进行了数值评估的校正项提供简单的近似分析表达式(根据经验拟合)(连续静电计算); (ii)提供对衍生热力学单离子溶剂化特性(以及溶液中相应的部分摩尔变量)的校正项,即焓,熵,等压热容,体积,等温压缩性和等压膨胀性(包括适当的标准状态校正)条款)。在Na +水合的情况下,测试了基于原子模拟的校正方案产生与方法无关的单离子溶剂化自由能的能力,并且对衍生热力学性质的校正项的性质和大小进行了数值评估。

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