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Effective Hydrogen Production from Alkaline and Natural Seawater using WO(3)(–x)@CdS(1–x) Nanocomposite-Based Electrocatalysts

[Image: see text] Offshore hydrogen production through water electrolysis presents significant technical and economic challenges. Achieving an efficient hydrogen evolution reaction (HER) in alkaline and natural seawater environments remains daunting due to the sluggish kinetics of water dissociation...

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Autores principales: Mohamed, Mohamed Jaffer Sadiq, Gondal, Mohammed Ashraf, Hassan, Muhammad, Almessiere, Munirah Abdullah, Tahir, Asif Ali, Roy, Anurag
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10515405/
https://www.ncbi.nlm.nih.gov/pubmed/37744852
http://dx.doi.org/10.1021/acsomega.3c02516
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author Mohamed, Mohamed Jaffer Sadiq
Gondal, Mohammed Ashraf
Hassan, Muhammad
Almessiere, Munirah Abdullah
Tahir, Asif Ali
Roy, Anurag
author_facet Mohamed, Mohamed Jaffer Sadiq
Gondal, Mohammed Ashraf
Hassan, Muhammad
Almessiere, Munirah Abdullah
Tahir, Asif Ali
Roy, Anurag
author_sort Mohamed, Mohamed Jaffer Sadiq
collection PubMed
description [Image: see text] Offshore hydrogen production through water electrolysis presents significant technical and economic challenges. Achieving an efficient hydrogen evolution reaction (HER) in alkaline and natural seawater environments remains daunting due to the sluggish kinetics of water dissociation. To address this issue, we synthesized electrocatalytic WO(3–x)@CdS(1–x) nanocomposites (WCSNCs) using ultrasonic-assisted laser irradiation. The synthesized WCSNCs with varying CdS contents were thoroughly characterized to investigate their structural, morphological, and electrochemical properties. Among the samples tested, the WCSNCs with 20 wt % CdS(1–x) in WO(3–x) (W(x)@S(x)-20%) exhibited superior electrocatalytic performance for hydrogen evolution in a 1 M KOH solution. Specifically, the W(x)@S(x)-20% catalyst demonstrated an overpotential of 0.191 V at a current density of −10 mA/cm(2) and a Tafel slope of 61.9 mV/dec. The W(x)@S(x)-20% catalysts demonstrated outstanding stability and durability, maintaining their performance after 24 h and up to 1000 CV cycles. Notably, when subjected to natural seawater electrolysis, the W(x)@S(x)-20% catalysts outperformed in terms of electrocatalytic HER activity and stability. The remarkable performance enhancement of the prepared electrocatalyst can be attributed to the combined effect of sulfur vacancies in CdS(1–x) and oxygen vacancies in WO(3–x). These vacancies promote the electrochemically active surface area, enhance the rate of charge separation and transfer, increase the number of electrocatalytic active sites, and accelerate the HER process in alkaline and natural seawater environments.
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spelling pubmed-105154052023-09-23 Effective Hydrogen Production from Alkaline and Natural Seawater using WO(3)(–x)@CdS(1–x) Nanocomposite-Based Electrocatalysts Mohamed, Mohamed Jaffer Sadiq Gondal, Mohammed Ashraf Hassan, Muhammad Almessiere, Munirah Abdullah Tahir, Asif Ali Roy, Anurag ACS Omega [Image: see text] Offshore hydrogen production through water electrolysis presents significant technical and economic challenges. Achieving an efficient hydrogen evolution reaction (HER) in alkaline and natural seawater environments remains daunting due to the sluggish kinetics of water dissociation. To address this issue, we synthesized electrocatalytic WO(3–x)@CdS(1–x) nanocomposites (WCSNCs) using ultrasonic-assisted laser irradiation. The synthesized WCSNCs with varying CdS contents were thoroughly characterized to investigate their structural, morphological, and electrochemical properties. Among the samples tested, the WCSNCs with 20 wt % CdS(1–x) in WO(3–x) (W(x)@S(x)-20%) exhibited superior electrocatalytic performance for hydrogen evolution in a 1 M KOH solution. Specifically, the W(x)@S(x)-20% catalyst demonstrated an overpotential of 0.191 V at a current density of −10 mA/cm(2) and a Tafel slope of 61.9 mV/dec. The W(x)@S(x)-20% catalysts demonstrated outstanding stability and durability, maintaining their performance after 24 h and up to 1000 CV cycles. Notably, when subjected to natural seawater electrolysis, the W(x)@S(x)-20% catalysts outperformed in terms of electrocatalytic HER activity and stability. The remarkable performance enhancement of the prepared electrocatalyst can be attributed to the combined effect of sulfur vacancies in CdS(1–x) and oxygen vacancies in WO(3–x). These vacancies promote the electrochemically active surface area, enhance the rate of charge separation and transfer, increase the number of electrocatalytic active sites, and accelerate the HER process in alkaline and natural seawater environments. American Chemical Society 2023-09-11 /pmc/articles/PMC10515405/ /pubmed/37744852 http://dx.doi.org/10.1021/acsomega.3c02516 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Mohamed, Mohamed Jaffer Sadiq
Gondal, Mohammed Ashraf
Hassan, Muhammad
Almessiere, Munirah Abdullah
Tahir, Asif Ali
Roy, Anurag
Effective Hydrogen Production from Alkaline and Natural Seawater using WO(3)(–x)@CdS(1–x) Nanocomposite-Based Electrocatalysts
title Effective Hydrogen Production from Alkaline and Natural Seawater using WO(3)(–x)@CdS(1–x) Nanocomposite-Based Electrocatalysts
title_full Effective Hydrogen Production from Alkaline and Natural Seawater using WO(3)(–x)@CdS(1–x) Nanocomposite-Based Electrocatalysts
title_fullStr Effective Hydrogen Production from Alkaline and Natural Seawater using WO(3)(–x)@CdS(1–x) Nanocomposite-Based Electrocatalysts
title_full_unstemmed Effective Hydrogen Production from Alkaline and Natural Seawater using WO(3)(–x)@CdS(1–x) Nanocomposite-Based Electrocatalysts
title_short Effective Hydrogen Production from Alkaline and Natural Seawater using WO(3)(–x)@CdS(1–x) Nanocomposite-Based Electrocatalysts
title_sort effective hydrogen production from alkaline and natural seawater using wo(3)(–x)@cds(1–x) nanocomposite-based electrocatalysts
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10515405/
https://www.ncbi.nlm.nih.gov/pubmed/37744852
http://dx.doi.org/10.1021/acsomega.3c02516
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