Spectroswiss, Lausanne, Switzerland.
Ion Physics and Mass Spectrometry Laboratory, Peter The Great State Polytechnic University, Saint-Petersburg, Russia.
Mass Spectrom Rev. 2022 Mar;41(2):314-337. doi: 10.1002/mas.21681. Epub 2021 Jan 18.
Ion cyclotron resonance (ICR) cells provide stability and coherence of ion oscillations in crossed electric and magnetic fields over extended periods of time. Using the Fourier transform enables precise measurements of ion oscillation frequencies. These precisely measured frequencies are converted into highly accurate mass-to-charge ratios of the analyte ions by calibration procedures. In terms of resolution and mass accuracy, Fourier transform ICR mass spectrometry (FT-ICR MS) offers the highest performance of any MS technology. This is reflected in its wide range of applications. However, in the most challenging MS application, for example, imaging, enhancements in the mass accuracy of fluctuating ion fluxes are required to continue advancing the field. One approach is to shift the ion signal power into the peak corresponding to the true cyclotron frequency instead of the reduced cyclotron frequency peak. The benefits of measuring the true cyclotron frequency include increased tolerance to electric fields within the ICR cell, which enhances frequency measurement precision. As a result, many attempts to implement this mode of FT-ICR MS operation have occurred. Examples of true cyclotron frequency measurements include detection of magnetron inter-harmonics of the reduced cyclotron frequency (i.e., the sidebands), trapping field-free (i.e., screened) ICR cells, and hyperbolic ICR cells with quadrupolar ion detection. More recently, ICR cells with spatially distributed ion clouds have demonstrated attractive performance characteristics for true cyclotron frequency ion detection. Here, we review the corresponding developments in FT-ICR MS over the past 40 years.
离子回旋共振(ICR)单元在正交电场和磁场中提供离子振荡的稳定性和相干性,可以在较长时间内保持稳定。傅里叶变换(Fourier transform)可以实现离子振荡频率的精确测量。通过校准程序,这些精确测量的频率可以转换为分析物离子的高度准确的质荷比。在分辨率和质量精度方面,傅里叶变换离子回旋共振质谱(FT-ICR MS)是任何 MS 技术中性能最高的。这反映在其广泛的应用中。然而,在最具挑战性的 MS 应用中,例如成像,需要提高波动离子通量的质量精度,以继续推动该领域的发展。一种方法是将离子信号功率转移到与真实回旋频率相对应的峰,而不是与降低的回旋频率峰相对应。测量真实回旋频率的好处包括提高了对 ICR 单元内电场的容忍度,从而提高了频率测量精度。因此,已经进行了许多尝试来实现这种 FT-ICR MS 操作模式。真实回旋频率测量的示例包括检测降低的回旋频率的磁控管间谐波(即边带)、无捕获场(即屏蔽)ICR 单元和具有四极离子检测的双曲线 ICR 单元。最近,具有空间分布的离子云的 ICR 单元已经证明了在真实回旋频率离子检测方面具有吸引人的性能特征。在这里,我们回顾了过去 40 年来 FT-ICR MS 的相应发展。