Park Sung-Gun, Anderson Gordon A, Bruce James E
Department of Genome Sciences, University of Washington, Seattle, WA 98109.
GAA Custom Engineering, LLC, Benton City, WA 99320.
Int J Mass Spectrom. 2018 Apr;427:29-34. doi: 10.1016/j.ijms.2017.08.020. Epub 2017 Sep 8.
Fourier transform ion cyclotron resonance mass spectrometry (FTICR-MS) is well-renowned for its ultrahigh resolving power and mass measurement accuracy. As with other types of analytical instrumentation, achievable signal-to-noise ratio (S/N) is an important analytical figure of merit with FTICR-MS. S/N can be improved with higher magnetic fields and longer time-domain signal acquisition periods. However, serial signal averaging of spectra or time-domain signals acquired with multiple ion populations is most commonly used to improve S/N. On the other hand, serial acquisition and averaging of multiple scans significantly increases required data acquisition time and is often incompatible with on-line chromatographic separations. In this study, we investigated the potential for increased S/N by averaging 4 spectra that were acquired in parallel with a single ICR cell with 4 pairs of dipole detection electrodes, each with an independent pre-amplifier. This spectral averaging was achieved with no need for multiple ion accumulation events nor multiple, serial excitation and detection events. These efforts demonstrated that parallel signal acquisition with 4 detector electrode pairs produces S/N 1.76-fold higher than that from a single detection electrode pair. With parallel detection, improved S/N was achieved with no observable loss in resolving power (100,000) as compared with that from a single detection electrode pair. These results demonstrate that parallel detection of multiple induced image current signals with multiple preamplifiers exists as a viable option for future instrumentation to increase achievable S/N and sensitivity. This approach may have general utility especially where conventional serial signal averaging is impractical.
傅里叶变换离子回旋共振质谱(FTICR-MS)以其超高的分辨率和质量测量精度而闻名。与其他类型的分析仪器一样,可实现的信噪比(S/N)是FTICR-MS的一个重要分析性能指标。可以通过更高的磁场和更长的时域信号采集周期来提高信噪比。然而,最常用的方法是对多个离子群采集的光谱或时域信号进行串行信号平均来提高信噪比。另一方面,多次扫描的串行采集和平均会显著增加所需的数据采集时间,并且通常与在线色谱分离不兼容。在本研究中,我们研究了通过对使用具有4对偶极检测电极(每个电极都有一个独立的前置放大器)的单个ICR池并行采集的4个光谱进行平均来提高信噪比的潜力。这种光谱平均无需多次离子积累事件,也无需多次串行激发和检测事件。这些研究表明,使用4对检测电极进行并行信号采集产生的信噪比是单个检测电极对的1.76倍。通过并行检测,与单个检测电极对相比,在分辨率(100,000)没有明显损失的情况下实现了信噪比的提高。这些结果表明,使用多个前置放大器并行检测多个感应镜像电流信号是未来仪器提高可实现的信噪比和灵敏度的一个可行选择。这种方法可能具有普遍实用性,特别是在传统的串行信号平均不切实际的情况下。