Young Nicolas L, Sisto Michael C, Young Meggie N, Grant Patrick G, Killilea David W, LaMotte LaTasha, Wu Kuang Jen J, Lebrilla Carlito B
Biosecurity and NanoSciences Laboratory, Lawrence Livermore National Laboratory, Livermore, California 94551, USA.
Anal Chem. 2007 Aug 1;79(15):5711-8. doi: 10.1021/ac070446z. Epub 2007 Jul 6.
Here we report the design, implementation, and initial use of an asymmetric steady-state continuous dual-nanospray ion source. This new source design consists of two independently controlled and continuously operating nanospray interfaces with funnel shaped counter electrodes. A steady-state ion mixing region combines the ions from the two sources into a single ion beam in the intermediate region after ion extraction from the nanospray sources but before the bulk of the pressure gradient of the vacuum interface. With this design we have achieved robust mixing of ions with no loss of duty cycle and remarkable ionization characteristics that appear entirely noncompetitive and potentially beneficial. This allows continuous introduction of internal mass calibration ions during a liquid chromatography-mass spectrometric analysis. This in turn allows for recalibration of individual spectra yielding sub part per million mass accuracy throughout the run. The steady-state approach presented here has several advantages over previous approaches. Since neither the voltage nor positions of the sprayers are changed, the nanospray has greater spray stability. The ions produced by the analyte sprayer are continuously sampled, as opposed to time-sharing which necessitates that the analyte ion stream be interrupted for some part of the duty cycle. There are no moving parts, no rapid changes to high voltages requiring additional control electronics, and no need for completely separate vacuum interfaces and the associated complexity. The sprayers are independently controlled and do not exhibit competition or mutual ionization suppression. This novel source has been implemented with a Bruker Apex II 9.4 T FTICR with a modified Apollo electrospray ion source as part of a nanoflow liquid chromatography-Fourier transform ion cyclotron resonance mass spectrometry analysis platform. Because of the low cost of implementation, the new source could potentially be applied to other forms of mass spectrometry, such as electrospray ionization-time-of-flight (ESI-TOF), which can benefit from internal mass calibration.
在此,我们报告一种不对称稳态连续双纳米喷雾离子源的设计、实现及初步应用。这种新的源设计由两个独立控制且连续运行的纳米喷雾接口以及漏斗形反电极组成。一个稳态离子混合区域在离子从纳米喷雾源提取后但在真空接口的大部分压力梯度之前的中间区域,将来自两个源的离子合并成单一离子束。通过这种设计,我们实现了离子的稳健混合,且不失占空比,同时具有显著的电离特性,这些特性似乎完全不具有竞争性且可能是有益的。这使得在液相色谱 - 质谱分析过程中能够连续引入内部质量校准离子。进而能够对各个光谱进行重新校准,在整个运行过程中实现百万分之几的质量精度。这里提出的稳态方法相较于先前的方法具有多个优点。由于喷雾器的电压和位置均未改变,纳米喷雾具有更高的喷雾稳定性。与分时方式不同,分析物喷雾器产生的离子是连续采样的,分时方式需要在占空比的某些部分中断分析物离子流。没有移动部件,无需对高电压进行快速变化从而不需要额外的控制电子设备,也无需完全独立的真空接口及相关的复杂性。喷雾器是独立控制的,不会表现出竞争或相互电离抑制。这种新型源已与配备改进型阿波罗电喷雾离子源的布鲁克Apex II 9.4T傅里叶变换离子回旋共振质谱仪一起实现,作为纳流液相色谱 - 傅里叶变换离子回旋共振质谱分析平台的一部分。由于实施成本低,这种新源有可能应用于其他形式的质谱分析,如电喷雾电离飞行时间质谱(ESI - TOF),其可受益于内部质量校准。