Tang Keqi, Tolmachev Aleksey V, Nikolaev Evgueni, Zhang Rui, Belov Mikhail E, Udseth Harold R, Smith Richard D
Environmental Molecular Sciences Laboratory, Pacific Northwest National Laboratory, Richland, Washington 99352, USA.
Anal Chem. 2002 Oct 15;74(20):5431-7. doi: 10.1021/ac0202583.
A new atmospheric pressure ionization mass spectrometer (API-MS) interface has been developed to allow the control of ion transmission through the first vacuum stage of the mass spectrometer. The described interface uses a dual-heated capillary and a dual-inlet ion funnel design. Two electrosprays, aligned with the dual-capillary inlet, are used to introduce ions from different solutions independently into the MS. The initial design was specifically aimed at developing a method for the controlled introduction of calibrant ions in highly accurate mass measurements using Fourier transform ion cyclotron resonance mass spectrometer (FTICR). The dual-channel ion funnel has different inlet diameters that are aligned with the dual capillaries. The large diameter main channel of the ion funnel is used for analyte introduction to provide optimum ion transmission. The second, smaller diameter channel inlet includes a jet disrupter in the ion funnel to modulate the ion transmission through the channel. The two inlet channels converge into a single-channel ion funnel where ions from both channels are mixed, focused, and transmitted to the mass analyzer. Both theoretical simulations and experimental results show that the transmission of different m/z species in the small diameter channel of the ion funnel can be effectively modulated by varying the bias voltage on the jet disrupter. Both static and dynamic modulations of ion transmission are demonstrated experimentally by applying either a constant DC or a square waveform voltage to the jet disrupter. High ion transmission efficiency, similar to the standard single-channel ion funnel, is maintained in the main analyte channel inlet of the ion funnel over a broad m/z range with negligible "cross talk" between the two ion funnel inlet channels. Several possible applications of the new interface (e.g., for high-accuracy MS analysis of complex biological samples) are described.
已开发出一种新型大气压电离质谱仪(API-MS)接口,用于控制离子通过质谱仪第一真空级的传输。所描述的接口采用双加热毛细管和双入口离子漏斗设计。与双毛细管入口对齐的两个电喷雾用于将来自不同溶液的离子独立引入质谱仪。最初的设计专门旨在开发一种在使用傅里叶变换离子回旋共振质谱仪(FTICR)进行高精度质量测量时控制引入校准离子的方法。双通道离子漏斗具有与双毛细管对齐的不同入口直径。离子漏斗的大直径主通道用于引入分析物,以提供最佳的离子传输。第二个较小直径的通道入口在离子漏斗中包括一个射流破坏器,用于调节通过该通道的离子传输。两个入口通道汇聚到一个单通道离子漏斗中,来自两个通道的离子在此混合、聚焦并传输到质量分析器。理论模拟和实验结果均表明,通过改变射流破坏器上的偏置电压,可以有效地调节离子漏斗小直径通道中不同质荷比(m/z)离子的传输。通过向射流破坏器施加恒定直流电压或方波电压,实验证明了离子传输的静态和动态调制。在离子漏斗的主分析物通道入口处,在较宽的m/z范围内保持了与标准单通道离子漏斗相似的高离子传输效率,两个离子漏斗入口通道之间的“串扰”可忽略不计。描述了新接口的几种可能应用(例如,用于复杂生物样品的高精度质谱分析)。