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首页> 外文期刊>The Journal of Chemical Physics >Molecular dynamics investigation of desorption and ion separation following picosecond infrared laser (PIRL) ablation of an ionic aqueous protein solution
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Molecular dynamics investigation of desorption and ion separation following picosecond infrared laser (PIRL) ablation of an ionic aqueous protein solution

机译:皮秒离子激光烧蚀离子蛋白质水溶液后解吸和离子分离的分子动力学研究

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Molecular dynamics simulations were performed to characterize the ablation process induced by a picosecond infrared laser (PIRL) operating in the regime of desorption by impulsive vibrational excitation (DIVE) of a model peptide (lysozyme)/counter-ion system in aqueous solution. The simulations were performed for ablation under typical experimental conditions found within a time-of-flight mass spectrometer (TOF-MS), that is in vacuum with an applied electric field (E = +/- 10(7) V/m), for up to 2 ns post-ablation and compared to the standard PIRL-DIVE ablation condition (E = 0 V/m). Further, a simulation of ablation under an extreme field condition (E = 10(10) V/m) was performed for comparison to extend the effective dynamic range of the effect of the field on charge separation. The results show that the plume dynamics were retained under a typical TOF-MS condition within the first 1 ns of ablation. Efficient desorption was observed with more than 90% of water molecules interacting with lysozyme stripped off within 1 ns post-ablation. The processes of ablation and desolvation of analytes were shown to be independent of the applied electric field and thus decoupled from the ion separation process. Unlike under the extreme field conditions, the electric field inside a typical TOF-MS was shown to modify the ions' motion over a longer time and in a soft manner with no enhancement to fragmentation observed as compared to the standard PIRL-DIVE. The study indicates that the PIRL-DIVE ablation mechanism could be used as a new, intrinsically versatile, and highly sensitive ion source for quantitative mass spectrometry. Published by AIP Publishing.
机译:进行了分子动力学模拟,以表征由皮秒红外激光(PIRL)在水溶液中通过模型肽(溶菌酶)/抗衡离子系统的脉冲振动激发(DIVE)进行解吸而解吸的过程。模拟是在飞行时间质谱仪(TOF-MS)中发现的典型实验条件下进行的,该条件是在真空中施加电场(E = +/- 10(7)V / m),消融后持续2 ns的时间,并与标准PIRL-DIVE消融条件(E = 0 V / m)进行比较。此外,进行了在极端电场条件下(E = 10(10)V / m)的消融模拟,以进行比较,以扩展电场对电荷分离的影响的有效动态范围。结果表明,在典型的TOF-MS条件下,在烧蚀的前1 ns内可以保持羽流动力学。消融后1 ns内观察到超过90%的水分子与溶菌酶相互作用,从而观察到了有效的解吸。结果表明,分析物的消融和去溶剂化过程与所施加的电场无关,因此与离子分离过程脱钩。与在极端场条件下不同,与标准PIRL-DIVE相比,典型的TOF-MS内部的电场在更长的时间内以柔和的方式改变了离子的运动,而未观察到碎裂的增强。研究表明,PIRL-DIVE烧蚀机制可以用作定量质谱的新型,本质上通用且高度敏感的离子源。由AIP Publishing发布。

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