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Performance and Mechanism of Photoelectrocatalytic Activity of MoS(x)/WO(3) Heterostructures Obtained by Reactive Pulsed Laser Deposition for Water Splitting

This work studies the factors that affect the efficiency of the photoelectrochemical hydrogen evolution reaction (HER) using MoS(x)/WO(3) nano-heterostructures obtained by reactive pulsed laser deposition (RPLD) on glass substrates covered with fluorinated tin oxide (FTO). Another focus of the resea...

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Autores principales: Fominski, Vyacheslav, Romanov, Roman, Fominski, Dmitry, Soloviev, Alexey, Rubinkovskaya, Oxana, Demin, Maxim, Maksimova, Ksenia, Shvets, Pavel, Goikhman, Aleksandr
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7279322/
https://www.ncbi.nlm.nih.gov/pubmed/32365935
http://dx.doi.org/10.3390/nano10050871
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author Fominski, Vyacheslav
Romanov, Roman
Fominski, Dmitry
Soloviev, Alexey
Rubinkovskaya, Oxana
Demin, Maxim
Maksimova, Ksenia
Shvets, Pavel
Goikhman, Aleksandr
author_facet Fominski, Vyacheslav
Romanov, Roman
Fominski, Dmitry
Soloviev, Alexey
Rubinkovskaya, Oxana
Demin, Maxim
Maksimova, Ksenia
Shvets, Pavel
Goikhman, Aleksandr
author_sort Fominski, Vyacheslav
collection PubMed
description This work studies the factors that affect the efficiency of the photoelectrochemical hydrogen evolution reaction (HER) using MoS(x)/WO(3) nano-heterostructures obtained by reactive pulsed laser deposition (RPLD) on glass substrates covered with fluorinated tin oxide (FTO). Another focus of the research is the potential of MoS(x) nanofilms as a precursor for MoO(z)(S) nanofilms, which enhance the efficiency of the photo-activated oxygen evolution reaction (OER) using the MoO(z)(S)/WO(3)/FTO heterostructures. The nanocrystalline WO(3) film was created by laser ablation of a W target in dry air at a substrate temperature of 420 °C. Amorphous MoS(x) nanofilms (2 ≤ x ≤ 12) were obtained by laser ablation of an Mo target in H(2)S gas of varied pressure at room temperature of the substrate. Studies of the energy band structures showed that for all MoS(x)/WO(3)/FTO samples, photo-activated HER in an acid solution proceeded through the Z-scheme. The highest photoelectrochemical HER efficiency (a photocurrent density ~1 mA/cm(2) at a potential of ~0 V under Xe lamp illumination (~100 mW/cm(2))) was found for porous MoS(4.5) films containing the highest concentration of catalytically active sites attributed to S ligands. During the anodic posttreatment of porous MoS(x) nanofilms, MoO(z)(S) films with a narrow energy band gap were formed. The highest OER efficiency (a photocurrent density ~5.3 mA/cm(2) at 1.6 V) was detected for MoO(z)(S)/WO(3)/FTO photoanodes that were prepared by posttreatment of the MoS(x)(~3.2) precursor. The MoO(z)(S) film contributed to the effective photogeneration of electron–hole pairs that was followed by the transport of photoelectrons from MoO(z)(S) into the WO(3) film and the effective participation of holes possessing strong oxidation ability in the OER on the surface of the MoO(z)(S) film.
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spelling pubmed-72793222020-06-17 Performance and Mechanism of Photoelectrocatalytic Activity of MoS(x)/WO(3) Heterostructures Obtained by Reactive Pulsed Laser Deposition for Water Splitting Fominski, Vyacheslav Romanov, Roman Fominski, Dmitry Soloviev, Alexey Rubinkovskaya, Oxana Demin, Maxim Maksimova, Ksenia Shvets, Pavel Goikhman, Aleksandr Nanomaterials (Basel) Article This work studies the factors that affect the efficiency of the photoelectrochemical hydrogen evolution reaction (HER) using MoS(x)/WO(3) nano-heterostructures obtained by reactive pulsed laser deposition (RPLD) on glass substrates covered with fluorinated tin oxide (FTO). Another focus of the research is the potential of MoS(x) nanofilms as a precursor for MoO(z)(S) nanofilms, which enhance the efficiency of the photo-activated oxygen evolution reaction (OER) using the MoO(z)(S)/WO(3)/FTO heterostructures. The nanocrystalline WO(3) film was created by laser ablation of a W target in dry air at a substrate temperature of 420 °C. Amorphous MoS(x) nanofilms (2 ≤ x ≤ 12) were obtained by laser ablation of an Mo target in H(2)S gas of varied pressure at room temperature of the substrate. Studies of the energy band structures showed that for all MoS(x)/WO(3)/FTO samples, photo-activated HER in an acid solution proceeded through the Z-scheme. The highest photoelectrochemical HER efficiency (a photocurrent density ~1 mA/cm(2) at a potential of ~0 V under Xe lamp illumination (~100 mW/cm(2))) was found for porous MoS(4.5) films containing the highest concentration of catalytically active sites attributed to S ligands. During the anodic posttreatment of porous MoS(x) nanofilms, MoO(z)(S) films with a narrow energy band gap were formed. The highest OER efficiency (a photocurrent density ~5.3 mA/cm(2) at 1.6 V) was detected for MoO(z)(S)/WO(3)/FTO photoanodes that were prepared by posttreatment of the MoS(x)(~3.2) precursor. The MoO(z)(S) film contributed to the effective photogeneration of electron–hole pairs that was followed by the transport of photoelectrons from MoO(z)(S) into the WO(3) film and the effective participation of holes possessing strong oxidation ability in the OER on the surface of the MoO(z)(S) film. MDPI 2020-04-30 /pmc/articles/PMC7279322/ /pubmed/32365935 http://dx.doi.org/10.3390/nano10050871 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Fominski, Vyacheslav
Romanov, Roman
Fominski, Dmitry
Soloviev, Alexey
Rubinkovskaya, Oxana
Demin, Maxim
Maksimova, Ksenia
Shvets, Pavel
Goikhman, Aleksandr
Performance and Mechanism of Photoelectrocatalytic Activity of MoS(x)/WO(3) Heterostructures Obtained by Reactive Pulsed Laser Deposition for Water Splitting
title Performance and Mechanism of Photoelectrocatalytic Activity of MoS(x)/WO(3) Heterostructures Obtained by Reactive Pulsed Laser Deposition for Water Splitting
title_full Performance and Mechanism of Photoelectrocatalytic Activity of MoS(x)/WO(3) Heterostructures Obtained by Reactive Pulsed Laser Deposition for Water Splitting
title_fullStr Performance and Mechanism of Photoelectrocatalytic Activity of MoS(x)/WO(3) Heterostructures Obtained by Reactive Pulsed Laser Deposition for Water Splitting
title_full_unstemmed Performance and Mechanism of Photoelectrocatalytic Activity of MoS(x)/WO(3) Heterostructures Obtained by Reactive Pulsed Laser Deposition for Water Splitting
title_short Performance and Mechanism of Photoelectrocatalytic Activity of MoS(x)/WO(3) Heterostructures Obtained by Reactive Pulsed Laser Deposition for Water Splitting
title_sort performance and mechanism of photoelectrocatalytic activity of mos(x)/wo(3) heterostructures obtained by reactive pulsed laser deposition for water splitting
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7279322/
https://www.ncbi.nlm.nih.gov/pubmed/32365935
http://dx.doi.org/10.3390/nano10050871
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