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Ultra-High-Resolution Ion Mobility Separations Over Extended Path Lengths and Mobility Ranges Achieved using a Multilevel Structures for Lossless Ion Manipulations Module

机译:超高分辨率离子迁移率在扩展路径长度和使用多级结构进行无损离子操纵模块实现的移动范围

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Over the past few years, structures for lossless ion manipulations (SLIM) have used traveling waves (TWs) to move ions over long serpentine paths that can be further lengthened by routing the ions through multiple passages of the same path. Such SLIM "multipass" separations provide unprecedentedly high ion mobility resolving powers but are ultimately limited in their ion mobility range because of the range of mobilities spanned in a single pass; that is, higher mobility ions ultimately "overtake" and "lap" lower mobility ions that have experienced fewer passes, convoluting their arrival time distribution at the detector. To achieve ultrahigh resolution separations over broader mobility ranges, we have developed a new multilevel SLIM possessing multiple stacked serpentine paths. Ions are transferred between SLIM levels through apertures (or ion escalators) in the SLIM surfaces. The initial multilevel SLIM module incorporates four levels and three interlevel ion escalator passages, providing a total path length of 43.2 m. Using the full path length and helium buffer gas, high resolution separations were achieved for Agilent tuning mixture phosphazene ions over a broad mobility range (K-0 approximate to 3.0 to 1.2 cm(2)/(V*s)). High sensitivity was achieved using "in-SLIM" ion accumulation over an extended trapping region of the first SLIM level. High transmission efficiency of ions over a broad mobility range (e.g., K-0 approximate to 3.0 to 1.67 cm(2)/(V*s)) was achieved, with transmission efficiency rolling off for the lower mobility ions (e.g., K-0 approximate to 1.2 cm(2)/(V*s)). Resolving powers of up to similar to 560 were achieved using all four ion levels to separate reverse peptides (SDGRG(1+) and GRGDS(1+)). A complex mixture of phosphopeptides showed similar coverage could be achieved using one or all four SLIM levels, and doubly charged phosphosite isomers not significantly separated using one SLIM level were well resolved when four levels were used. The new multilevel SLIM technology thus enables wider mobility range ultrahigh-resolution ion mobility separations and expands on the ability of SLIM to obtain improved separations of complex mixtures with high sensitivity.
机译:在过去几年中,无损离子操纵(SLIM)的结构已经使用了行波(TWS)来移动远离蛇形路径的离子,通过通过同一路径的多个通道布线可以进一步延长。这种纤薄的“多脂”分离提供了前所未有的高离子迁移率分辨率,但由于在单次通过中跨越的迁移量,最终最终限制在离子迁移率范围内;也就是说,较高的迁移率离子最终“超越”和“搭载”较少的迁移率离子,其经历较少的通过,将其到达时间分布在探测器上卷积。为了在更广泛的移动范围内实现超高分辨率的分离,我们开发了一个具有多个堆叠蛇形路径的新的多级纤薄。通过纤薄表面中的孔(或离子自动扶梯)在纤薄的水平之间传递离子。初始多级SLIM模块包含四个电平和三个间隔离子自动座通道,提供43.2米的总路径长度。使用全部路径长度和氦缓冲气体,在广泛的迁移率范围内进行安捷伦调谐混合物磷腈离子(K-0近似为3.0至1.2cm(2)/(v * s)),实现高分辨率分离。在第一细层的延伸捕获区域上使用“超薄”离子积聚来实现高灵敏度。在宽迁移率范围内的高传输效率(例如,k-0近似为3.0至1.67cm(2)/(2)/(2)/(v * s),随着下迁移率离子滚动的传输效率(例如,k- 0近似为1.2 cm(2)/(v * s))。使用所有四个离子水平达到相似于560的拆分能力以分离逆向肽(SDGRG(1+)和GRGDS(1+))。磷酸肽的复杂混合物显示出类似的覆盖,可以使用一个或全部四个纤薄的水平来实现,并且当使用四个水平时,使用一个纤薄的水平未显着分离的双电荷的磷酸盐异构体。因此,新的多级纤薄技术使得更广泛的迁移率范围超高分辨率离子迁移率分离,并扩展了纤细的能力,以获得具有高灵敏度的复杂混合物的改进分离。

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