利用结构中的非对称电动场进行离子约束和分离,实现无损离子操作。

IF 1.8 3区 化学 Q4 BIOCHEMICAL RESEARCH METHODS
Cullen Greer, Zackary R. Kinlein, Brian H. Clowers
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引用次数: 0

摘要

理论依据:TW-SLIM 离子迁移率分离利用长路径和最小损耗,显示出卓越的分辨率。之前报道的所有实验都使用了镜面电极表面,以产生对称的相反电场来限制离子。然而,其他平面离子光学技术的研究表明这可能是不必要的。本研究探讨了使用非对称电场的 SLIM 可获得分离的条件:非对称电场配置是通过对标准 TW-SLIM 板对的顶部印刷电路板的所有电极施加均匀的直流电势来定义的,没有对电极位置进行任何修改。这种配置在 SIMION 中进行模拟,以评估通过 SLIM 的传输情况。配备法拉第板检测器的台式 TW-SLIM 仪器也进行了同样的修改,使顶部印刷电路板的所有电极都具有统一的直流电位,而底部电路板则正常工作:模拟结果表明,在施加于 "推板 "的直流偏压范围内,四种不同 m/z 离子群的离子完全传输。同样,改进后的台式仪器能够以最小的损失传输、分离和循环离子。研究探讨了推杆强度对分离质量的影响,并就分辨神经肽离子的 +2 和 +3 电荷状态对标准 SLIM 和改进 SLIM 进行了比较:结论:使用非对称约束场的功能性 IMS 仪器表明,额外的场修改可能是在有限中断分析的情况下实现额外功能的一种手段。专门设计用作推板的 TW-SLIM PCB 板可最大限度地降低制造成本、简化装配、减少驱动电子元件并提高场一致性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Ion confinement and separation using asymmetric electrodynamic fields in structures for lossless ion manipulations

Ion confinement and separation using asymmetric electrodynamic fields in structures for lossless ion manipulations

Rationale

TW-SLIM ion mobility separations have demonstrated exceptional resolution by leveraging long paths with minimal loss. All previously reported experiments have used electrode surfaces which are mirrored to generate symmetrically opposing electric fields for ion confinement. However, work with other planar ion optics indicates this may be unnecessary. This study explores conditions under which separations may be obtained using a SLIM with asymmetric electric fields.

Methods

The asymmetric field configuration was defined by applying a uniform DC potential to all electrodes of the top PCB of a standard TW-SLIM board pair, with no electrode placement modifications. This configuration was simulated in SIMION to assess transmission through the SLIM. A benchtop TW-SLIM instrument outfitted with a Faraday plate detector was modified likewise, so the top PCB had a uniform DC potential applied to all electrodes, while the bottom board was operated normally.

Results

Simulations show full ion transmission for four different m/z ion populations over a range of DC biases applied to the “pusher” board. Likewise, the modified benchtop instrument is capable of transmitting, separating, and cycling ions with minimal losses. The effect of pusher strength on separation quality is explored, and comparisons between the standard and modified SLIM are made with respect to resolving the +2 and +3 charge states of neurotensin ions.

Conclusions

A functional IMS instrument using asymmetric confining fields demonstrates additional field modifications may be a means to achieve additional functionality with limited interruption of the analysis. A TW-SLIM PCB specifically designed as a pusher board would benefit from minimized manufacturing cost, simplifying assembly, reducing drive electronics, and improved field consistency.

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来源期刊
CiteScore
4.10
自引率
5.00%
发文量
219
审稿时长
2.6 months
期刊介绍: Rapid Communications in Mass Spectrometry is a journal whose aim is the rapid publication of original research results and ideas on all aspects of the science of gas-phase ions; it covers all the associated scientific disciplines. There is no formal limit on paper length ("rapid" is not synonymous with "brief"), but papers should be of a length that is commensurate with the importance and complexity of the results being reported. Contributions may be theoretical or practical in nature; they may deal with methods, techniques and applications, or with the interpretation of results; they may cover any area in science that depends directly on measurements made upon gaseous ions or that is associated with such measurements.
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