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优化离子迁移谱中的长程势能相互作用参数。

Optimization of long range potential interaction parameters in ion mobility spectrometry.

机构信息

Mechanical Engineering, Indiana University-Purdue University Indianapolis, 723 W Michigan St., Indianapolis, Indiana 46202, USA.

出版信息

J Chem Phys. 2018 Feb 21;148(7):074102. doi: 10.1063/1.5016170.

DOI:10.1063/1.5016170
PMID:29471643
Abstract

The problem of optimizing Lennard-Jones (L-J) potential parameters to perform collision cross section (CCS) calculations in ion mobility spectrometry has been undertaken. The experimental CCS of 16 small organic molecules containing carbon, hydrogen, oxygen, nitrogen, and fluoride in N was compared to numerical calculations using Density Functional Theory (DFT). CCS calculations were performed using the momentum transfer algorithm IMoS and a 4-6-12 potential without incorporating the ion-quadrupole potential. A ceteris paribus optimization method was used to optimize the intercept σ and potential well-depth ϵ for the given atoms. This method yields important information that otherwise would remain concealed. Results show that the optimized L-J parameters are not necessarily unique with intercept and well-depth following an exponential relation at an existing line of minimums. Similarly, the method shows that some molecules containing atoms of interest may be ill-conditioned candidates to perform optimizations of the L-J parameters. The final calculated CCSs for the chosen parameters differ 1% on average from their experimental counterparts. This result conveys the notion that DFT calculations can indeed be used as potential candidates for CCS calculations and that effects, such as the ion-quadrupole potential or diffuse scattering, can be embedded into the L-J parameters without loss of accuracy but with a large increase in computational efficiency.

摘要

已着手解决在离子淌度谱中优化 Lennard-Jones (L-J) 势能参数以进行碰撞截面 (CCS) 计算的问题。将包含碳、氢、氧、氮和氟的 16 种小有机分子的实验 CCS 与使用密度泛函理论 (DFT) 的数值计算进行了比较。CCS 计算使用动量传递算法 IMoS 和没有包含离子-四极矩势的 4-6-12 势能进行。采用等变优化方法对给定原子的截距 σ 和势阱深度 ϵ 进行优化。这种方法提供了重要的信息,否则这些信息将被隐藏。结果表明,优化的 L-J 参数不一定是唯一的,截距和阱深遵循现有最小线的指数关系。同样,该方法表明,某些包含感兴趣原子的分子可能是条件不佳的候选者,无法对 L-J 参数进行优化。选择参数后的最终计算 CCS 与实验值平均相差 1%。这一结果表明,DFT 计算确实可以用作 CCS 计算的潜在候选者,并且可以将离子-四极矩势或漫散射等效应嵌入 L-J 参数中,而不会降低准确性,但会大大提高计算效率。

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