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一种具有狭缝入口的大气压离子漏斗,用于提高高分辨差分离子淌度质谱中的信号和分辨率。

An atmospheric pressure ion funnel with a slit entrance for enhancing signal and resolution in high resolution differential ion mobility mass spectrometry.

机构信息

School of Chemistry, University of New South Wales, Sydney, NSW 2052, Australia.

出版信息

Analyst. 2022 Feb 28;147(5):870-879. doi: 10.1039/d1an01942b.

Abstract

Differential ion mobility (DMS) is a versatile ion separation method that is often integrated with mass spectrometry (MS). In DMS, extremely high electric fields are used such that ion mobility depends non-linearly on electric field and thus, ion separations can be more orthogonal to MS than lower field ion mobility-based methods. DMS can have sufficiently high resolution to be used for enantiomer analysis of small molecules and to separate protein ions with peak widths comparable to those obtained for peptides. However, the performance of high resolution DMS-MS can be limited owing to the substantial loss of ions (>10-fold) that can occur upon their transfer from atmospheric pressure (where DMS separation typically occurs) to vacuum through a narrow conductance limited inlet ( capillary) to the MS. Here, results from simulated ion trajectory simulations suggest that in high resolution DMS most ions can be lost by 'crashing' onto the narrow capillary inlet after exiting the DMS separation channel. To enhance DMS sensitivity and resolving power, an integrated DMS-MS interface concept is reported that consists of a slit electrode and a 12-electrode atmospheric pressure ion funnel (APIF). By using an APIF with slit entrance, the simulated ion transmission efficiencies increase by up to 257% for singly charged ions ([DMMP + H], [tryptophan + H], and [(2-dodecanone) + H]) and by 209% for [ubiquitin + 12H], without compromising resolving power. The use of APIF improves the ion focussing from the DMS exit to the MS capillary to improve sensitivity, and the slit ensures that ion dispersion in the analytically relevant direction perpendicular to the DMS electrodes is restricted to enhance resolution. By narrowing the slit of the DMS-Slit-APIF interface, the DMS resolving power can be increased further by at least 20%. Overall, these results indicate that the integrated DMS-Slit-APIF interface is promising for improving the sensitivity and resolution for many different types of DMS-MS experiments.

摘要

差分离子迁移率(DMS)是一种通用的离子分离方法,通常与质谱(MS)相结合。在 DMS 中,使用极高的电场,使得离子迁移率与电场呈非线性关系,因此,与较低电场基于离子迁移率的方法相比,离子分离可以更正交于 MS。DMS 可以具有足够高的分辨率,用于小分子的对映异构体分析,并分离与肽相比具有相似峰宽的蛋白质离子。然而,由于在大气压(DMS 分离通常发生在大气压下)到通过狭窄的导纳限制入口(毛细管)到 MS 的真空中转移时,离子(> 10 倍)的大量损失,可能会限制高分辨率 DMS-MS 的性能。这里,模拟离子轨迹模拟的结果表明,在高分辨率 DMS 中,大多数离子在离开 DMS 分离通道后会“碰撞”到狭窄的毛细管入口而丢失。为了提高 DMS 的灵敏度和分辨率,报道了一种集成的 DMS-MS 接口概念,该接口由狭缝电极和 12 电极大气压离子阱(APIF)组成。通过使用具有狭缝入口的 APIF,模拟的离子传输效率对于单电荷离子([DMMP+H],[色氨酸+H]和[(2-十二酮)+H])增加了高达 257%,对于[泛素+12H]增加了 209%,而不会影响分辨率。APIF 的使用改善了从 DMS 出口到 MS 毛细管的离子聚焦,以提高灵敏度,狭缝确保了在与 DMS 电极垂直的分析相关方向上的离子分散受到限制,从而提高了分辨率。通过缩小 DMS-狭缝-APIF 接口的狭缝,可以进一步将 DMS 分辨率提高至少 20%。总体而言,这些结果表明,集成的 DMS-狭缝-APIF 接口有望改善许多不同类型的 DMS-MS 实验的灵敏度和分辨率。

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