Amsden Jason J, Gehm Michael E, Russell Zachary E, Chen Evan X, Di Dona Shane T, Wolter Scott D, Danell Ryan M, Kibelka Gottfried, Parker Charles B, Stoner Brian R, Brady David J, Glass Jeffrey T
Department of Electrical and Computer Engineering, Duke University, Durham, North Carolina 27708; email:
Ion Innovations, Roswell, Georgia 30075.
Annu Rev Anal Chem (Palo Alto Calif). 2017 Jun 12;10(1):141-156. doi: 10.1146/annurev-anchem-061516-045256. Epub 2017 Mar 6.
The use of coded apertures in mass spectrometry can break the trade-off between throughput and resolution that has historically plagued conventional instruments. Despite their very early stage of development, coded apertures have been shown to increase throughput by more than one order of magnitude, with no loss in resolution in a simple 90-degree magnetic sector. This enhanced throughput can increase the signal level with respect to the underlying noise, thereby significantly improving sensitivity to low concentrations of analyte. Simultaneous resolution can be maintained, preventing any decrease in selectivity. Both one- and two-dimensional (2D) codes have been demonstrated. A 2D code can provide increased measurement diversity and therefore improved numerical conditioning of the mass spectrum that is reconstructed from the coded signal. This review discusses the state of development, the applications where coding is expected to provide added value, and the various instrument modifications necessary to implement coded apertures in mass spectrometers.
在质谱分析中使用编码孔径可以打破传统仪器一直以来所面临的通量与分辨率之间的权衡。尽管编码孔径尚处于非常早期的发展阶段,但在简单的90度磁扇形仪器中,已证明编码孔径可将通量提高一个多数量级,且分辨率不会降低。这种通量的提高可以增加相对于背景噪声的信号水平,从而显著提高对低浓度分析物的灵敏度。同时,可以保持分辨率,防止选择性降低。一维和二维(2D)编码均已得到验证。二维编码可以提供更多的测量多样性,从而改善从编码信号重建的质谱的数值条件。本文综述了编码孔径的发展现状、有望通过编码提供附加值的应用,以及在质谱仪中实现编码孔径所需的各种仪器改进。