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Characterization of a Low-Temperature Plasma (LTP) Ambient Ionization Source Using Temporally Resolved Monochromatic Imaging Spectrometry.

作者信息

Chan George C-Y, Engelhard Carsten, Wiley Joshua S, Shoulds Ayanna U, Cooks R Graham, Hieftje Gary M, Shelley Jacob T

机构信息

Department of Chemistry, Indiana University, Bloomington, IN, USA.

Lawrence Berkeley National Laboratory, Berkeley, CA, USA.

出版信息

Appl Spectrosc. 2023 Aug;77(8):940-956. doi: 10.1177/00037028231184501.

Abstract

The low-temperature plasma (LTP) probe is a common plasma-based source used for ambient desorption-ionization mass spectrometry (MS). While the LTP probe has been characterized in detail with MS, relatively few studies have used optical spectroscopy. In this paper, two-dimensional (2D) imaging at selected wavelengths is used to visualize important species in the LTP plasma jet. First, 2D steady-state images of the LTP plume for N (391.2 nm), He I (706.5 nm), and N (337.1 nm) emissions were recorded under selected plasma conditions. Second, time-resolved 2D emission maps of radiative species in the LTP plasma jet were recorded through the use of a 200 ns detection gate and varying gate delays with respect to the LTP trigger pulse. Emission from He I, N, and N in the plasma jet region was found to show a transient behavior (often referred to as plasma bullets) lasting only a few microseconds. The N and He I maps were highly correlated in spatial and temporal structure. Further, emission from N showed two maxima in time, one before and one after the maximum emission for N and He I, due to an initial electronic excitation wave and ion-electron recombination, respectively. Third, the interaction of the LTP probe with a sample substrate and an electrically grounded metallic needle was studied. Emission from a fluorophore on the sample substrate showed an initial photon-induced excitation from plasma-generated photons followed by electronic excitation by other plasma species. The presence of a grounded needle near the plasma jet significantly extended the plasma jet lifetime and also generated a long-lived corona discharge on the needle. The effect of LTP operating parameters on emission spectra was correlated with mass-spectral results including reagent-ion signals. Lastly, five movies provide a side-by-side comparison of the temporal behavior of emitting species and insights into the interactions of the emission clouds with a sample surface as well as an external needle. Temporally and spatially resolved imaging provided insights into important processes in the LTP plasma jet, which will help improve analyte ion sampling in LTP-MS.

摘要

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