Campbell J Larry, Zhu Mabel, Hopkins W Scott
AB SCIEX, Concord, ON, L4K 4V8, Canada,
J Am Soc Mass Spectrom. 2014 Sep;25(9):1583-91. doi: 10.1007/s13361-014-0939-3. Epub 2014 Jul 8.
Differential mobility spectrometry (DMS) can distinguish ions based upon the differences in their high- and low-field ion mobilities as they experience the asymmetric waveform applied to the DMS cell. These mobilities are known to be influenced by the ions' structure, m/z, and charge distribution (i.e., resonance structures) within the ions themselves, as well as by the gas-phase environment of the DMS cell. While these associations have been developed over time through empirical observations, the exact role of ion structures or their interactions with clustering molecules remains generally unknown. In this study, that relationship is explored by observing the DMS behaviors of a series of tetraalkylammonium ions as a function of their structures and the gas-phase environment of the DMS cell. To support the DMS experiments, the basin-hopping search strategy was employed to identify candidate cluster structures for density functional theory treatment. More than a million cluster structures distributed across 72 different ion-molecule cluster systems were sampled to determine global minimum structures and cluster binding energies. This joint computational and experimental approach suggests that cluster geometry, in particular ion-molecule intermolecular separation, plays a critical role in DMS.
差分离子迁移谱(DMS)能够根据离子在DMS池中所经历的不对称波形下其高场和低场离子迁移率的差异来区分离子。已知这些迁移率会受到离子自身结构、质荷比以及电荷分布(即共振结构)的影响,同时也会受到DMS池气相环境的影响。虽然这些关联是通过长期的经验观察建立起来的,但离子结构的确切作用或它们与聚集分子的相互作用通常仍然未知。在本研究中,通过观察一系列四烷基铵离子的DMS行为作为其结构和DMS池气相环境的函数来探索这种关系。为了支持DMS实验,采用了盆地跳跃搜索策略来识别用于密度泛函理论处理的候选簇结构。对分布在72个不同离子 - 分子簇系统中的超过一百万个簇结构进行了采样,以确定全局最小结构和簇结合能。这种计算与实验相结合的方法表明,簇几何结构,特别是离子 - 分子间的分子间距,在DMS中起着关键作用。