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Strong Intermixing Effects of LFO(1−x)/STO(x) toward the Development of Efficient Photoanodes for Photoelectrocatalytic Applications

Aiming to improve the photocatalytic properties of transition metal perovskites to be used as robust photoanodes, [LaFeO(3)](1−x)/[SrTiO(3)](x) nanocomposites (LFO(1−x)/STO(x)) are considered. This hybrid structure combines good semiconducting properties and an interesting intrinsic remanent polariz...

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Autores principales: Nassereddine, Yassine, Benyoussef, Manal, Rajput, Nitul S., Saitzek, Sébastien, El Marssi, Mimoun, Jouiad, Mustapha
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10649736/
https://www.ncbi.nlm.nih.gov/pubmed/37947708
http://dx.doi.org/10.3390/nano13212863
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author Nassereddine, Yassine
Benyoussef, Manal
Rajput, Nitul S.
Saitzek, Sébastien
El Marssi, Mimoun
Jouiad, Mustapha
author_facet Nassereddine, Yassine
Benyoussef, Manal
Rajput, Nitul S.
Saitzek, Sébastien
El Marssi, Mimoun
Jouiad, Mustapha
author_sort Nassereddine, Yassine
collection PubMed
description Aiming to improve the photocatalytic properties of transition metal perovskites to be used as robust photoanodes, [LaFeO(3)](1−x)/[SrTiO(3)](x) nanocomposites (LFO(1−x)/STO(x)) are considered. This hybrid structure combines good semiconducting properties and an interesting intrinsic remanent polarization. All the studied samples were fabricated using a solid-state method followed by high-energy ball milling, and they were subsequently deposited by spray coating. The synthesized compounds were demonstrated to possess orthorhombic (Pnma) and cubic (Pm [Formula: see text] m) structures for LFO and STO, respectively, with an average grain size of 55–70 nm. The LFO(1−x)/STO(x) nanocomposites appeared to exhibit high visible light absorption, corresponding to band gaps of 2.17–3.21 eV. Our findings show that LFO(0.5)/STO(0.5) is the optimized heterostructure; it achieved a high photocurrent density of 11 μA/cm(2) at 1.23 V bias vs. RHE and an applied bias photo-to-current efficiency of 4.1 × 10(−3)% at 0.76 V vs. RHE, as demonstrated by the photoelectrochemical measurements. These results underline the role of the two phases intermixing LFO and STO at the appropriate content to yield a high-performing photoanode ascribed to efficient charge separation and transfer. This suggests that LFO(0.5)/STO(0.5) could be a potential candidate for the development of efficient photoanodes for hydrogen generation via photoelectrocatalytic water splitting.
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spelling pubmed-106497362023-10-29 Strong Intermixing Effects of LFO(1−x)/STO(x) toward the Development of Efficient Photoanodes for Photoelectrocatalytic Applications Nassereddine, Yassine Benyoussef, Manal Rajput, Nitul S. Saitzek, Sébastien El Marssi, Mimoun Jouiad, Mustapha Nanomaterials (Basel) Article Aiming to improve the photocatalytic properties of transition metal perovskites to be used as robust photoanodes, [LaFeO(3)](1−x)/[SrTiO(3)](x) nanocomposites (LFO(1−x)/STO(x)) are considered. This hybrid structure combines good semiconducting properties and an interesting intrinsic remanent polarization. All the studied samples were fabricated using a solid-state method followed by high-energy ball milling, and they were subsequently deposited by spray coating. The synthesized compounds were demonstrated to possess orthorhombic (Pnma) and cubic (Pm [Formula: see text] m) structures for LFO and STO, respectively, with an average grain size of 55–70 nm. The LFO(1−x)/STO(x) nanocomposites appeared to exhibit high visible light absorption, corresponding to band gaps of 2.17–3.21 eV. Our findings show that LFO(0.5)/STO(0.5) is the optimized heterostructure; it achieved a high photocurrent density of 11 μA/cm(2) at 1.23 V bias vs. RHE and an applied bias photo-to-current efficiency of 4.1 × 10(−3)% at 0.76 V vs. RHE, as demonstrated by the photoelectrochemical measurements. These results underline the role of the two phases intermixing LFO and STO at the appropriate content to yield a high-performing photoanode ascribed to efficient charge separation and transfer. This suggests that LFO(0.5)/STO(0.5) could be a potential candidate for the development of efficient photoanodes for hydrogen generation via photoelectrocatalytic water splitting. MDPI 2023-10-29 /pmc/articles/PMC10649736/ /pubmed/37947708 http://dx.doi.org/10.3390/nano13212863 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Nassereddine, Yassine
Benyoussef, Manal
Rajput, Nitul S.
Saitzek, Sébastien
El Marssi, Mimoun
Jouiad, Mustapha
Strong Intermixing Effects of LFO(1−x)/STO(x) toward the Development of Efficient Photoanodes for Photoelectrocatalytic Applications
title Strong Intermixing Effects of LFO(1−x)/STO(x) toward the Development of Efficient Photoanodes for Photoelectrocatalytic Applications
title_full Strong Intermixing Effects of LFO(1−x)/STO(x) toward the Development of Efficient Photoanodes for Photoelectrocatalytic Applications
title_fullStr Strong Intermixing Effects of LFO(1−x)/STO(x) toward the Development of Efficient Photoanodes for Photoelectrocatalytic Applications
title_full_unstemmed Strong Intermixing Effects of LFO(1−x)/STO(x) toward the Development of Efficient Photoanodes for Photoelectrocatalytic Applications
title_short Strong Intermixing Effects of LFO(1−x)/STO(x) toward the Development of Efficient Photoanodes for Photoelectrocatalytic Applications
title_sort strong intermixing effects of lfo(1−x)/sto(x) toward the development of efficient photoanodes for photoelectrocatalytic applications
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10649736/
https://www.ncbi.nlm.nih.gov/pubmed/37947708
http://dx.doi.org/10.3390/nano13212863
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