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COMPARATIVE CHARACTERISTICS OF CATALYTICALLY ACTIVE MOSX FILMS IN THE HYDROGEN EVOLUTION REACTION ON A MOSX/WSE2 HETEROJUNCTION PHOTOCATHODE

https://doi.org/10.56304/S2079562924060344

EDN: CBUQJG

Abstract

Method of pulsed laser deposition (PLD) has attracted increasing attention as a promising approach for optimizing catalysts to enhance their efficiency in various applications. One of the current challenges is the simple and controllable synthesis of materials based on transition metal chalcogenides (in particular, MoSx), which can exhibit an increased electrocatalytic activity in the hydrogen evolution reaction. Changes in the chemical states of sulfur and molybdenum as a result of photo-electrochemical tests are studied in this work. By varying the laser fluence and buffer gas pressure, deposition regimes have been determined, resulting in catalytic layers with minimal sub-stoichiometric states, which are responsible for shifting the Fermi level to the conduction band edge. Combining experimental results and DFT calculations, catalytically active sites on the film surfaces have been identified.

About the Authors

O. V. Rubinkovskaya
National Research Nuclear University MEPhI (Moscow Engineering Physics Institute)
Russian Federation


R. I. Romanov
National Research Nuclear University MEPhI (Moscow Engineering Physics Institute)
Russian Federation


D. V. Fominski
National Research Nuclear University MEPhI (Moscow Engineering Physics Institute)
Russian Federation


V. N. Nevolin
National Research Nuclear University MEPhI (Moscow Engineering Physics Institute)
Russian Federation


H. Jiang
Nanchang Hangkong University
China


V. Yu. Fominski
National Research Nuclear University MEPhI (Moscow Engineering Physics Institute)
Russian Federation


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Review

For citations:


Rubinkovskaya O.V., Romanov R.I., Fominski D.V., Nevolin V.N., Jiang H., Fominski V.Yu. COMPARATIVE CHARACTERISTICS OF CATALYTICALLY ACTIVE MOSX FILMS IN THE HYDROGEN EVOLUTION REACTION ON A MOSX/WSE2 HETEROJUNCTION PHOTOCATHODE. Nuclear Physics and Engineering. 2025;16(1):56-62. (In Russ.) https://doi.org/10.56304/S2079562924060344. EDN: CBUQJG

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ISSN 2079-5629 (Print)
ISSN 2079-5637 (Online)