Design and characterization of an optical-fiber-coupled laser-induced desorption source for gas-phase dynamics experiments

Author:

Milešević Dennis1ORCID,Popat Divya1ORCID,Gellersen Paul1ORCID,Liu Zhihao1ORCID,Stimson Joseph1ORCID,Robertson Patrick1ORCID,Green Andrew1ORCID,Vallance Claire1ORCID

Affiliation:

1. Department of Chemistry, University of Oxford, Chemistry Research Laboratory , 12 Mansfield Rd., Oxford OX1 3TA, United Kingdom

Abstract

Preparation of neutral non-volatile molecules intact in the gas phase for mass spectrometry or chemical dynamics experiments remains a challenge for many classes of molecules. Here, we report the design and characterization of a fiber-coupled laser-based thermal desorption source capable of preparing intact neutral molecules at high molecular densities in the gas phase for use in velocity-map imaging experiments. Within this source, the sample is deposited onto a thin tantalum foil. Irradiation of the foil from the reverse side by a focused laser beam leads to highly localized heating of the sample, resulting in desorption of a plume of molecules into the gas phase. The fiber-coupled design simplifies the alignment of the desorption laser beam, and the ability to rotate the foil relative to the fixed laser beam allows the sample to be continually refreshed under vacuum. We use 118 nm photoionization of three test molecules—uracil, adenine, and phenylalanine—to characterize the source and to demonstrate various aspects of its performance. These include the dependence of the velocity-map imaging performance on the size of the interaction region and the dependence of the laser-induced desorption source emission on desorption laser power and heating time. Signal levels recorded in these measurements are comparable to those we typically obtain in similar experiments using a pulsed supersonic molecular beam, and we, therefore, believe that the source has considerable potential for use in a wide range of chemical dynamics and other experiments.

Funder

Engineering and Physical Sciences Research Council

Publisher

AIP Publishing

Subject

Instrumentation

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