Cargando…

An advanced PdNPs@MoS(2) nanocomposite for efficient oxygen evolution reaction in alkaline media

In response to the increasing availability of hydrogen energy and renewable energy sources, molybdenum disulfide (MoS(2))-based electrocatalysts are becoming increasingly important for efficient electrochemical water splitting. This study involves the incorporation of palladium nanoparticles (PdNPs)...

Descripción completa

Detalles Bibliográficos
Autores principales: Aftab, Umair, Solangi, Muhammad Yameen, Tahira, Aneela, Hanan, Abdul, Abro, Muhammad Ishaq, Karsy, Amal, Dawi, Elmuez, Bhatti, Muhammad Ali, Alshammari, Riyadh H., Nafady, Ayman, Gradone, Alessandro, Mazzaro, Raffaello, Morandi, Vittorio, Infantes-Molina, Antonia, Ibupoto, Zafar Hussain
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10623383/
https://www.ncbi.nlm.nih.gov/pubmed/37928849
http://dx.doi.org/10.1039/d3ra04738e
_version_ 1785130730279403520
author Aftab, Umair
Solangi, Muhammad Yameen
Tahira, Aneela
Hanan, Abdul
Abro, Muhammad Ishaq
Karsy, Amal
Dawi, Elmuez
Bhatti, Muhammad Ali
Alshammari, Riyadh H.
Nafady, Ayman
Gradone, Alessandro
Mazzaro, Raffaello
Morandi, Vittorio
Infantes-Molina, Antonia
Ibupoto, Zafar Hussain
author_facet Aftab, Umair
Solangi, Muhammad Yameen
Tahira, Aneela
Hanan, Abdul
Abro, Muhammad Ishaq
Karsy, Amal
Dawi, Elmuez
Bhatti, Muhammad Ali
Alshammari, Riyadh H.
Nafady, Ayman
Gradone, Alessandro
Mazzaro, Raffaello
Morandi, Vittorio
Infantes-Molina, Antonia
Ibupoto, Zafar Hussain
author_sort Aftab, Umair
collection PubMed
description In response to the increasing availability of hydrogen energy and renewable energy sources, molybdenum disulfide (MoS(2))-based electrocatalysts are becoming increasingly important for efficient electrochemical water splitting. This study involves the incorporation of palladium nanoparticles (PdNPs) into hydrothermally grown MoS(2)via a UV light assisted process to afford PdNPs@MoS(2) as an alternative electrocatalyst for efficient energy storage and conversion. Various analytical techniques, including scanning electron microscopy (SEM), transmission electron microscopy (TEM), X-ray diffraction (XRD), X-ray photoelectron spectroscopy (XPS), and energy dispersive spectroscopy (EDS), were used to investigate the morphology, crystal quality, and chemical composition of the samples. Although PdNPs did not alter the MoS(2) morphology, oxygen evolution reaction (OER) activity was driven at considerable overpotential. When electrochemical water splitting was performed in 1.0 M KOH aqueous solution with PdNPs@MoS(2) (sample-2), an overpotential of 253 mV was observed. Furthermore, OER performance was highly favorable through rapid reaction kinetics and a low Tafel slope of 59 mV dec(−1), as well as high durability and stability. In accordance with the electrochemical results, sample-2 showed also a lower charge transfer resistance, which again provided evidence of OER activity. The enhanced OER activity was attributed to a number of factors, including structural, surface chemical compositions, and synergistic effects between MoS(2) and PdNPs.
format Online
Article
Text
id pubmed-10623383
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-106233832023-11-04 An advanced PdNPs@MoS(2) nanocomposite for efficient oxygen evolution reaction in alkaline media Aftab, Umair Solangi, Muhammad Yameen Tahira, Aneela Hanan, Abdul Abro, Muhammad Ishaq Karsy, Amal Dawi, Elmuez Bhatti, Muhammad Ali Alshammari, Riyadh H. Nafady, Ayman Gradone, Alessandro Mazzaro, Raffaello Morandi, Vittorio Infantes-Molina, Antonia Ibupoto, Zafar Hussain RSC Adv Chemistry In response to the increasing availability of hydrogen energy and renewable energy sources, molybdenum disulfide (MoS(2))-based electrocatalysts are becoming increasingly important for efficient electrochemical water splitting. This study involves the incorporation of palladium nanoparticles (PdNPs) into hydrothermally grown MoS(2)via a UV light assisted process to afford PdNPs@MoS(2) as an alternative electrocatalyst for efficient energy storage and conversion. Various analytical techniques, including scanning electron microscopy (SEM), transmission electron microscopy (TEM), X-ray diffraction (XRD), X-ray photoelectron spectroscopy (XPS), and energy dispersive spectroscopy (EDS), were used to investigate the morphology, crystal quality, and chemical composition of the samples. Although PdNPs did not alter the MoS(2) morphology, oxygen evolution reaction (OER) activity was driven at considerable overpotential. When electrochemical water splitting was performed in 1.0 M KOH aqueous solution with PdNPs@MoS(2) (sample-2), an overpotential of 253 mV was observed. Furthermore, OER performance was highly favorable through rapid reaction kinetics and a low Tafel slope of 59 mV dec(−1), as well as high durability and stability. In accordance with the electrochemical results, sample-2 showed also a lower charge transfer resistance, which again provided evidence of OER activity. The enhanced OER activity was attributed to a number of factors, including structural, surface chemical compositions, and synergistic effects between MoS(2) and PdNPs. The Royal Society of Chemistry 2023-11-03 /pmc/articles/PMC10623383/ /pubmed/37928849 http://dx.doi.org/10.1039/d3ra04738e Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Aftab, Umair
Solangi, Muhammad Yameen
Tahira, Aneela
Hanan, Abdul
Abro, Muhammad Ishaq
Karsy, Amal
Dawi, Elmuez
Bhatti, Muhammad Ali
Alshammari, Riyadh H.
Nafady, Ayman
Gradone, Alessandro
Mazzaro, Raffaello
Morandi, Vittorio
Infantes-Molina, Antonia
Ibupoto, Zafar Hussain
An advanced PdNPs@MoS(2) nanocomposite for efficient oxygen evolution reaction in alkaline media
title An advanced PdNPs@MoS(2) nanocomposite for efficient oxygen evolution reaction in alkaline media
title_full An advanced PdNPs@MoS(2) nanocomposite for efficient oxygen evolution reaction in alkaline media
title_fullStr An advanced PdNPs@MoS(2) nanocomposite for efficient oxygen evolution reaction in alkaline media
title_full_unstemmed An advanced PdNPs@MoS(2) nanocomposite for efficient oxygen evolution reaction in alkaline media
title_short An advanced PdNPs@MoS(2) nanocomposite for efficient oxygen evolution reaction in alkaline media
title_sort advanced pdnps@mos(2) nanocomposite for efficient oxygen evolution reaction in alkaline media
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10623383/
https://www.ncbi.nlm.nih.gov/pubmed/37928849
http://dx.doi.org/10.1039/d3ra04738e
work_keys_str_mv AT aftabumair anadvancedpdnpsmos2nanocompositeforefficientoxygenevolutionreactioninalkalinemedia
AT solangimuhammadyameen anadvancedpdnpsmos2nanocompositeforefficientoxygenevolutionreactioninalkalinemedia
AT tahiraaneela anadvancedpdnpsmos2nanocompositeforefficientoxygenevolutionreactioninalkalinemedia
AT hananabdul anadvancedpdnpsmos2nanocompositeforefficientoxygenevolutionreactioninalkalinemedia
AT abromuhammadishaq anadvancedpdnpsmos2nanocompositeforefficientoxygenevolutionreactioninalkalinemedia
AT karsyamal anadvancedpdnpsmos2nanocompositeforefficientoxygenevolutionreactioninalkalinemedia
AT dawielmuez anadvancedpdnpsmos2nanocompositeforefficientoxygenevolutionreactioninalkalinemedia
AT bhattimuhammadali anadvancedpdnpsmos2nanocompositeforefficientoxygenevolutionreactioninalkalinemedia
AT alshammaririyadhh anadvancedpdnpsmos2nanocompositeforefficientoxygenevolutionreactioninalkalinemedia
AT nafadyayman anadvancedpdnpsmos2nanocompositeforefficientoxygenevolutionreactioninalkalinemedia
AT gradonealessandro anadvancedpdnpsmos2nanocompositeforefficientoxygenevolutionreactioninalkalinemedia
AT mazzaroraffaello anadvancedpdnpsmos2nanocompositeforefficientoxygenevolutionreactioninalkalinemedia
AT morandivittorio anadvancedpdnpsmos2nanocompositeforefficientoxygenevolutionreactioninalkalinemedia
AT infantesmolinaantonia anadvancedpdnpsmos2nanocompositeforefficientoxygenevolutionreactioninalkalinemedia
AT ibupotozafarhussain anadvancedpdnpsmos2nanocompositeforefficientoxygenevolutionreactioninalkalinemedia
AT aftabumair advancedpdnpsmos2nanocompositeforefficientoxygenevolutionreactioninalkalinemedia
AT solangimuhammadyameen advancedpdnpsmos2nanocompositeforefficientoxygenevolutionreactioninalkalinemedia
AT tahiraaneela advancedpdnpsmos2nanocompositeforefficientoxygenevolutionreactioninalkalinemedia
AT hananabdul advancedpdnpsmos2nanocompositeforefficientoxygenevolutionreactioninalkalinemedia
AT abromuhammadishaq advancedpdnpsmos2nanocompositeforefficientoxygenevolutionreactioninalkalinemedia
AT karsyamal advancedpdnpsmos2nanocompositeforefficientoxygenevolutionreactioninalkalinemedia
AT dawielmuez advancedpdnpsmos2nanocompositeforefficientoxygenevolutionreactioninalkalinemedia
AT bhattimuhammadali advancedpdnpsmos2nanocompositeforefficientoxygenevolutionreactioninalkalinemedia
AT alshammaririyadhh advancedpdnpsmos2nanocompositeforefficientoxygenevolutionreactioninalkalinemedia
AT nafadyayman advancedpdnpsmos2nanocompositeforefficientoxygenevolutionreactioninalkalinemedia
AT gradonealessandro advancedpdnpsmos2nanocompositeforefficientoxygenevolutionreactioninalkalinemedia
AT mazzaroraffaello advancedpdnpsmos2nanocompositeforefficientoxygenevolutionreactioninalkalinemedia
AT morandivittorio advancedpdnpsmos2nanocompositeforefficientoxygenevolutionreactioninalkalinemedia
AT infantesmolinaantonia advancedpdnpsmos2nanocompositeforefficientoxygenevolutionreactioninalkalinemedia
AT ibupotozafarhussain advancedpdnpsmos2nanocompositeforefficientoxygenevolutionreactioninalkalinemedia