首页> 外文期刊>The Journal of Chemical Physics >Suppression of unimolecular decay of laser desorbed peptide and protein ions by entrainment in rarefied supersonic gas jets under weak electric fields
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Suppression of unimolecular decay of laser desorbed peptide and protein ions by entrainment in rarefied supersonic gas jets under weak electric fields

机译:在弱电场下通过夹带稀有超声气体射流来抑制激光解吸的肽和蛋白质离子的单分子衰减

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Unimolecular decay of sample ions imposes a limit on the usable laser fluence in matrix-assisted laser desorption/ionization (MALDI) ion sources. Traditionally, some modest degree of collisional sample ion cooling has been achieved by connecting MALDI ion sources directly to gas-filled radio frequency (RF) multipoles. It was also discovered in the early 1990s that gas-filled RF multipoles exhibit increased ion transmission efficiency due to collisional ion focusing effects. This unexpected experimental finding was later supported by elementary Monte Carlo simulations. Both experiments and simulations assumed a resting background gas with typical pressures of the order of 1 Pa. However, considerable additional improvements can be achieved if laser desorbed sample ions are introduced immediately after desorption, still within the ion source, in an axisymmetric rarefied supersonic gas jet with peak pressure of the order of 100 Pa and flow velocities >300 m/s, and under weak electric fields. We describe here the design principle and report performance data of an ion source coined "MALDI-2," which incorporates elements of both rarefied aerodynamics and particle optics. Such a design allows superb suppression of metastable fragmentation due to rapid collisional cooling in <10 μs and nearly perfect injection efficiency into the attached RF ion guide, as numerous experiments have confirmed.
机译:样品离子的单分子衰减对基质辅助激光解吸/电离(MALDI)离子源中的可用激光通量施加了限制。传统上,通过将MALDI离子源直接连接到充气的射频(RF)多极上,已经达到了一定程度的碰撞样品离子冷却。在1990年代初期还发现,由于碰撞离子聚焦效应,充气RF多极杆显示出更高的离子传输效率。后来,这一意外的发现得到了基本的蒙特卡洛模拟的支持。实验和模拟都假设静止的背景气体的典型压力约为1 Pa。但是,如果在轴对称稀有超音速气体中,仍在离子源内解吸后立即引入激光解吸的样品离子,则可以实现相当多的其他改进。峰值压力为100 Pa左右且流速> 300 m / s且在弱电场下的射流。我们在这里描述设计原理并报告称为“ MALDI-2”的离子源的性能数据,该离子源结合了稀有的空气动力学和粒子光学原理。正如许多实验已证实的那样,这种设计可在不到10μs的时间内快速碰撞冷却,并实现对亚稳态碎片的极佳抑制,并且对连接的RF离子导管的注入效率几乎完美。

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