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Field-Gradient-Focusing Ion Guide for Enhanced Transfer Efficiency of Low-Mass Ions

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ANALYTICAL CHEMISTRY
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AMER CHEMICAL SOC
DOI: 10.1021/acs.analchem.2c05014

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Efficient transmission of low-mass ions in a rough vacuum pressure region is achieved by a novel ion guide, the field-gradient-focusing ion guide (FGF-IG). Integration of FGF-IG into a miniature mass spectrometer (mini MS) with a continuous atmospheric pressure interface improves the transfer efficiency of ions, resulting in reduced low-mass discrimination effect and enhanced sensitivity for smaller arginine ions. The smooth transfer concept from dodecapole to quadrupole fields can be extended to other multipole fields.
Efficient transmission of low-mass ions in a rough vacuum pressure region has always been a challenging issue in mass spectrometry (MS). In this study, a novel ion guide, namely, field-gradient-focusing ion guide (FGF-IG), was proposed to improve the transfer efficiency of ions, especially low-mass ions in a rough vacuum region. The FGF-IG has 12 electrodes whose surfaces gradually narrowed and tilted inward, and its electric field gradually varies from dodecapole (or multipole) to quadrupole along the ion transfer route. The field radius was gradually decreased from 6 to 2 mm in the multipole region (65 mm in length) and finally remained unchanged as 2 mm in the quadrupole region (20 mm in length). By integrating into a miniature mass spectrometer (mini MS) with a continuous atmospheric pressure interface, this ion guide was optimized in terms of inlet capillary position, radio frequency amplitude, and direct current voltage applied on it. Results showed that a reduced low-mass discrimination effect and improved efficiency of simultaneously transferring mid and low m/z ions were achieved for FGF-IG compared with a conventional ion funnel. Under optimized conditions, a limit of detection of 1 ng/mL was obtained for both reserpine (m/z 609) and arginine (m/z 175) ions by integrating FGF-IG into the mini-MS. The sensitivity of smaller arginine ions using FGF-IG was enhanced by similar to 10 times than that obtained using the conventional ion funnel (10 ng/mL) in comparative experiments. The idea of smooth transfer from dodecapole to quadrupole fields could be extended to other multipole fields, as well as in lab-scale MS instruments.

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