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Photoelectrochemical Selective Oxidation of Glycerol to Glyceraldehyde with Bi-Based Metal–Organic-Framework-Decorated WO(3) Photoanode

The conversion of glycerol to high-value-added products via photoelectrochemical (PEC) oxidation has emerged as a promising approach for utilizing a sustainable and clean energy source with environmental and economic benefits. Moreover, the energy requirement for glycerol to produce hydrogen is lowe...

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Autores principales: Jung, Yoonsung, Kim, Seungkyu, Choi, Hojoong, Kim, Yunseul, Hwang, Jun Beom, Lee, Donghyeon, Kim, Yejoon, Park, Jun-Cheol, Kim, Dong-Yu, Lee, Sanghan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10223667/
https://www.ncbi.nlm.nih.gov/pubmed/37242109
http://dx.doi.org/10.3390/nano13101690
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author Jung, Yoonsung
Kim, Seungkyu
Choi, Hojoong
Kim, Yunseul
Hwang, Jun Beom
Lee, Donghyeon
Kim, Yejoon
Park, Jun-Cheol
Kim, Dong-Yu
Lee, Sanghan
author_facet Jung, Yoonsung
Kim, Seungkyu
Choi, Hojoong
Kim, Yunseul
Hwang, Jun Beom
Lee, Donghyeon
Kim, Yejoon
Park, Jun-Cheol
Kim, Dong-Yu
Lee, Sanghan
author_sort Jung, Yoonsung
collection PubMed
description The conversion of glycerol to high-value-added products via photoelectrochemical (PEC) oxidation has emerged as a promising approach for utilizing a sustainable and clean energy source with environmental and economic benefits. Moreover, the energy requirement for glycerol to produce hydrogen is lower than that for pure water splitting. In this study, we propose the use of WO(3) nanostructures decorated with Bi-based metal–organic frameworks (Bi-MOFs) as the photoanode for glycerol oxidation with simultaneous hydrogen production. The WO(3)-based electrodes selectively converted glycerol to glyceraldehyde, a high-value-added product, with remarkable selectivity. The Bi-MOF-decorated WO(3) nanorods enhanced the surface charge transfer and adsorption properties, thereby improving the photocurrent density and production rate (1.53 mA/cm(2) and 257 mmol/m(2)·h at 0.8 V(RHE)). The photocurrent was maintained for 10 h, ensuring stable glycerol conversion. Furthermore, at 1.2 V(RHE), the average production rate of glyceraldehyde reached 420 mmol/m(2)·h, with a selectivity of 93.6% between beneficial oxidized products over the photoelectrode. This study provides a practical approach for the conversion of glycerol to glyceraldehyde via the selective oxidation of WO(3) nanostructures and demonstrates the potential of Bi-MOFs as a promising cocatalyst for PEC biomass valorization.
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spelling pubmed-102236672023-05-28 Photoelectrochemical Selective Oxidation of Glycerol to Glyceraldehyde with Bi-Based Metal–Organic-Framework-Decorated WO(3) Photoanode Jung, Yoonsung Kim, Seungkyu Choi, Hojoong Kim, Yunseul Hwang, Jun Beom Lee, Donghyeon Kim, Yejoon Park, Jun-Cheol Kim, Dong-Yu Lee, Sanghan Nanomaterials (Basel) Article The conversion of glycerol to high-value-added products via photoelectrochemical (PEC) oxidation has emerged as a promising approach for utilizing a sustainable and clean energy source with environmental and economic benefits. Moreover, the energy requirement for glycerol to produce hydrogen is lower than that for pure water splitting. In this study, we propose the use of WO(3) nanostructures decorated with Bi-based metal–organic frameworks (Bi-MOFs) as the photoanode for glycerol oxidation with simultaneous hydrogen production. The WO(3)-based electrodes selectively converted glycerol to glyceraldehyde, a high-value-added product, with remarkable selectivity. The Bi-MOF-decorated WO(3) nanorods enhanced the surface charge transfer and adsorption properties, thereby improving the photocurrent density and production rate (1.53 mA/cm(2) and 257 mmol/m(2)·h at 0.8 V(RHE)). The photocurrent was maintained for 10 h, ensuring stable glycerol conversion. Furthermore, at 1.2 V(RHE), the average production rate of glyceraldehyde reached 420 mmol/m(2)·h, with a selectivity of 93.6% between beneficial oxidized products over the photoelectrode. This study provides a practical approach for the conversion of glycerol to glyceraldehyde via the selective oxidation of WO(3) nanostructures and demonstrates the potential of Bi-MOFs as a promising cocatalyst for PEC biomass valorization. MDPI 2023-05-21 /pmc/articles/PMC10223667/ /pubmed/37242109 http://dx.doi.org/10.3390/nano13101690 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
Jung, Yoonsung
Kim, Seungkyu
Choi, Hojoong
Kim, Yunseul
Hwang, Jun Beom
Lee, Donghyeon
Kim, Yejoon
Park, Jun-Cheol
Kim, Dong-Yu
Lee, Sanghan
Photoelectrochemical Selective Oxidation of Glycerol to Glyceraldehyde with Bi-Based Metal–Organic-Framework-Decorated WO(3) Photoanode
title Photoelectrochemical Selective Oxidation of Glycerol to Glyceraldehyde with Bi-Based Metal–Organic-Framework-Decorated WO(3) Photoanode
title_full Photoelectrochemical Selective Oxidation of Glycerol to Glyceraldehyde with Bi-Based Metal–Organic-Framework-Decorated WO(3) Photoanode
title_fullStr Photoelectrochemical Selective Oxidation of Glycerol to Glyceraldehyde with Bi-Based Metal–Organic-Framework-Decorated WO(3) Photoanode
title_full_unstemmed Photoelectrochemical Selective Oxidation of Glycerol to Glyceraldehyde with Bi-Based Metal–Organic-Framework-Decorated WO(3) Photoanode
title_short Photoelectrochemical Selective Oxidation of Glycerol to Glyceraldehyde with Bi-Based Metal–Organic-Framework-Decorated WO(3) Photoanode
title_sort photoelectrochemical selective oxidation of glycerol to glyceraldehyde with bi-based metal–organic-framework-decorated wo(3) photoanode
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10223667/
https://www.ncbi.nlm.nih.gov/pubmed/37242109
http://dx.doi.org/10.3390/nano13101690
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