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Solvation Energy and Gas-Phase Stability Influences on Alkali Metal Cluster Ion Formation in Electrospray Ionization Mass Spectrometry

机译:溶剂能和气相稳定性对电喷雾电离质谱中碱金属簇离子形成的影响

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The ability to observe abundant gas-phase metal cluster ions in electrospray ionization mass spectrometry (ESI-MS) is highly dependent on experimental conditions. Alkali halides (MX) and other alkali metal salts were used to investigate the formation of cluster ions in ESI-MS. All compounds were found to give cluster ions of the form (M↓(n)+ ↓(l)X↓(n)) ↑(+) and (M↓(n)X↓(n+1)) ↑(-), with only two alkali salts yielding doubly charged cluster ions. In homologous alkali halide series, the relative abundances of cluster ions increased with increasing size of either the cation (positive ion mode) or the anion (negative ion mode). Calculations using an electrostatic model show that the gas-phase stability of cluster ions is greater for smaller cations or anions when a fixed counterion is employed. This stability calculation goes in a direction just opposite to the trend in cluster ion abundances observed in ESI-MS. Studies of equimolar mixtures consisting of two alkali halides reveal two distinct trends. When the equimolar mixture was composed of differing ions that participate in the droplet charge excess with the same counterion, the less solvated ions were found to form more abundant cluster ions. When the ions participating in the charge excess were fixed, the preferred counterion in observed clusters was the one that is more solvated in solution and forms more sable clusters in the gas phase. These observations can be rationalized by an extended form of the charged residue model where the weakly solvated ions that are part of the charge excess are preferentially enriched in offspring droplets during uneven fission. By contrast, transfer of a particular counterion located in the bulk of the droplets to the offspring droplets is not disfavored when this counterion is strongly solvated.
机译:在电喷雾电离质谱(ESI-MS)中观察大量气相金属簇离子的能力高度依赖于实验条件。碱金属卤化物(MX)和其他碱金属盐用于研究ESI-MS中簇离子的形成。发现所有化合物均以(M↓(n)+↓(l)X↓(n))↑(+)和(M↓(n)X↓(n + 1))↑(- ),只有两种碱金属盐会产生双电荷的簇离子。在同源的碱金属卤化物系列中,簇离子的相对丰度随着阳离子(正离子模式)或阴离子(负离子模式)尺寸的增加而增加。使用静电模型进行的计算表明,使用固定抗衡离子时,对于较小的阳离子或阴离子,簇离子的气相稳定性更高。这种稳定性计算的方向与在ESI-MS中观察到的簇离子丰度趋势相反。由两种碱金属卤化物组成的等摩尔混合物的研究揭示了两种不同的趋势。当等摩尔混合物由不同离子组成,这些离子以相同的抗衡离子参与过量的液滴电荷时,发现溶剂化程度较低的离子会形成更丰富的簇状离子。当固定了参与过量电荷的离子时,观察到的簇中的首选抗衡离子是在溶液中更易溶剂化并在气相中形成更稳定的簇的离子。这些观察结果可以通过带电残余物模型的扩展形式来合理化,其中在不均匀裂变过程中,作为过量电荷一部分的弱溶剂化离子优先富集于后代液滴中。相比之下,当该抗衡离子被强烈溶剂化时,不不利于将位于大部分液滴中的特定抗衡离子转移至后代液滴。

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