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Parallel Spectral Acquisition with an Ion Cyclotron Resonance Cell Array

机译:离子回旋共振细胞阵列的并行光谱采集

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Mass measurement accuracy is a critical analytical figure-of-merit in most areas of mass spectrometry application. However, the time required for acquisition of high-resolution, high mass accuracy data limits many applications and is an aspect under continual pressure for development. Current efforts target implementation of higher electrostatic and magnetic fields because ion oscillatory frequencies increase linearly with field strength. As such, the time required for spectral acquisition of a given resolving power and mass accuracy decreases linearly with increasing fields. Mass spectrometer developments to include multiple high-resolution detectors that can be operated in parallel could further decrease the acquisition time by a factor of n, the number of detectors. Efforts described here resulted in development of an instrument with a set of Fourier transform ion cyclotron resonance (ICR) cells as detectors that constitute the first MS array capable of parallel high-resolution spectral acquisition. ICR cell array systems consisting of three or five cells were constructed with printed circuit boards and installed within a single superconducting magnet and vacuum system. Independent ion populations were injected and trapped within each cell in the array. Upon filling the array, all ions in all cells were simultaneously excited and ICR signals from each cell were independently amplified and recorded in parallel. Presented here are the initial results of successful parallel spectral acquisition, parallel mass spectrometry (MS) and MS/MS measurements, and parallel high-resolution acquisition with the MS array system.
机译:在质谱分析应用的大多数领域中,质量测量精度都是至关重要的分析指标。但是,获取高分辨率,高质量精度数据所需的时间限制了许多应用程序,并且这是不断受到开发压力的一个方面。当前的努力目标是实现更高的静电场和磁场,因为离子振荡频率随场强线性增加。这样,给定分辨率和质量精度的光谱采集所需的时间随场的增加而线性减小。质谱仪的发展包括多个可以并行运行的高分辨率检测器,可以将获取时间进一步减少n,即检测器的数量。这里描述的努力导致了一种仪器的开发,该仪器具有一组傅立叶变换离子回旋共振(ICR)细胞作为检测器,构成了能够并行进行高分辨率光谱采集的第一个MS阵列。由三个或五个单元组成的ICR单元阵列系统由印刷电路板构成,并安装在单个超导磁体和真空系统中。注入独立的离子种群并捕获在阵列中的每个单元内。填充阵列后,所有单元中的所有离子均被同时激发,每个单元的ICR信号被独立放大并并行记录。这里介绍的是成功的平行光谱采集,平行质谱(MS)和MS / MS测量以及利用MS阵列系统进行并行高分辨率采集的初步结果。

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