National High Magnetic Field Laboratory, Florida State University , 1800 East Paul Dirac Drive, Tallahassee, Florida 32310, United States.
Department of Earth, Ocean and Atmospheric Science, Florida State University , P.O. Box 3064520, Tallahassee, Florida 32306, United States.
Anal Chem. 2018 Feb 6;90(3):2041-2047. doi: 10.1021/acs.analchem.7b04159. Epub 2018 Jan 5.
We describe complex organic mixture analysis by 21 tesla (T) Fourier transform ion cyclotron resonance mass spectrometry (FT-ICR MS). Ultrahigh mass-resolving power (m/Δm > 2 700 000 at m/z 400) and mass accuracy (80 ppb rms) enable resolution and confident identification of tens of thousands of unique elemental compositions. We demonstrate 2.2-fold higher mass-resolving power, 2.6-fold better mass measurement accuracy, and 1.3-fold more assigned molecular formulas compared to our custom-built, state-of-the-art 9.4 T FT-ICR mass spectrometer for petroleum and dissolved organic matter (DOM) analyses. Analysis of a heavy petroleum distillate exemplifies the need for ultrahigh-performance mass spectrometry (49 040 assigned molecular formulas for 21 T versus 29 012 for 9.4 T) and extends the identification of previously unresolved O, SO, and NO classes. Mass selective ion accumulation (20 Thompson isolation) of an asphalt volcano sample yields 462 resolved mass spectral peaks at m/z 677 and reveals previously unresolved CHNOS mass differences at high mass (m/z > 600). Similar performance gains are realized in the analysis of dissolved organic matter, where doubly charged O species are resolved from singly charged SO species, which requires a mass-resolving power greater than 1 400 000 (at m/z 600). This direct comparison reveals the continued need for higher mass-resolving power and better mass accuracy for comprehensive molecular characterization of the most complex organic mixtures.
我们描述了 21 特斯拉(T)傅里叶变换离子回旋共振质谱(FT-ICR MS)对复杂有机混合物的分析。超高的质量分辨率(m/Δm > 2 700 000,在 m/z 400 处)和质量精度(80 ppb rms)使我们能够分辨和确认数以万计的独特元素组成。与我们用于石油和溶解有机物(DOM)分析的定制、最先进的 9.4 T FT-ICR 质谱仪相比,我们展示了 2.2 倍的质量分辨率提高、2.6 倍的质量测量精度提高和 1.3 倍的分配分子公式增加。重质石油馏分的分析例证了超高性能质谱(21 T 时 49 040 个分配分子公式,9.4 T 时 29 012 个)的需求,并扩展了以前无法分辨的 O、SO 和 NO 类的识别。对沥青火山样品进行的质量选择性离子累积(20 个汤姆逊隔离),在 m/z 677 处得到 462 个分辨质谱峰,并揭示了在高质量(m/z > 600)处以前无法分辨的 CHNOS 质量差异。在溶解有机物的分析中也实现了类似的性能提升,其中双电荷 O 物种与单电荷 SO 物种分离,这需要大于 1 400 000 的质量分辨率(在 m/z 600 处)。这种直接比较揭示了继续需要更高的质量分辨率和更好的质量精度,以实现对最复杂有机混合物的全面分子特征描述。