Open Access
Molybdenum tungsten hydrogen oxide doped with phosphorus for enhanced oxygen/hydrogen evolution reactions
Sana Ullah
1
,
Asif Hussain
2
,
M A Farid
3
,
Shaheen Irfan
2
,
Roohul Amin
4
,
Ahmed M. Fouda
5
,
Atif Nazir
6
,
Dehua Hou
7
,
Jijun Zou
1
,
Shangfeng Du
7
,
Muhammad Tahir
7, 8
3
Department of Chemistry, University of Education Lahore, 53700 Lahore, Pakistan
|
8
Department of Physics, University of Education, Lahore, Punjab 54770, Pakistan
|
Publication type: Journal Article
Publication date: 2024-09-02
scimago Q1
wos Q2
SJR: 0.777
CiteScore: 7.6
Impact factor: 4.6
ISSN: 20462069
PubMed ID:
39224634
Abstract
The development of efficient electrocatalysts for hydrogen and oxygen evolution reactions (HER and OER) is pivotal for advancing cleaner and sustainable fuel production technologies. The conventional electrocatalysts have limited stability and higher overpotentials, and there is demand to explore advanced materials and synthesis methods. In this context, a novel bifunctional electrocatalyst has been devised through the phosphidation of tungsten molybdenum oxide (P-Mo0.69W0.31H0.98O3) at relatively low temperatures. This innovative approach aims to enhance the efficiency of HER and OER while minimizing the overpotential values and maintaining higher stability. Specifically, the individual performance of Mo0.69W0.31H0.98O3 has been significantly boosted by doping it with phosphorus at a low temperature of 300 °C. This doping process results in a unique morphology for the catalyst, leading to a notable improvement in OER/HER performances. P-Mo0.69W0.31H0.98O3 exhibits a potential of 320 mV at 10 mA cm−2 in a KOH electrolyte, demonstrating both high activity and long-term stability. Additionally, P-Mo0.69W0.31H0.98O3 exhibits commendable HER performance, requiring only 380 mV at 100 mA cm−2. This combination of efficient OER and HER performance positions P-Mo0.69W0.31H0.98O3 as representing a significant advancement in the field of electrocatalysis, additionally addressing the fundamental gap by providing stable and hybrid catalyst for various electrochemical devices. Given its cost-effectiveness and exceptional activity, P-Mo0.69W0.31H0.98O3 holds significant potential for advancing the field of electrocatalysis and contributing to the development of cleaner and sustainable fuel production methods.
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Total citations:
2
Citations from 2024:
2
(100%)
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Ullah S. et al. Molybdenum tungsten hydrogen oxide doped with phosphorus for enhanced oxygen/hydrogen evolution reactions // RSC Advances. 2024. Vol. 14. No. 38. pp. 27928-27934.
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Ullah S., Hussain A., Farid M. A., Irfan S., Amin R., Fouda A. M., Nazir A., Hou D., Zou J., Du S., Tahir M. Molybdenum tungsten hydrogen oxide doped with phosphorus for enhanced oxygen/hydrogen evolution reactions // RSC Advances. 2024. Vol. 14. No. 38. pp. 27928-27934.
Cite this
RIS
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TY - JOUR
DO - 10.1039/d4ra05023a
UR - https://xlink.rsc.org/?DOI=D4RA05023A
TI - Molybdenum tungsten hydrogen oxide doped with phosphorus for enhanced oxygen/hydrogen evolution reactions
T2 - RSC Advances
AU - Ullah, Sana
AU - Hussain, Asif
AU - Farid, M A
AU - Irfan, Shaheen
AU - Amin, Roohul
AU - Fouda, Ahmed M.
AU - Nazir, Atif
AU - Hou, Dehua
AU - Zou, Jijun
AU - Du, Shangfeng
AU - Tahir, Muhammad
PY - 2024
DA - 2024/09/02
PB - Royal Society of Chemistry (RSC)
SP - 27928-27934
IS - 38
VL - 14
PMID - 39224634
SN - 2046-2069
ER -
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@article{2024_Ullah,
author = {Sana Ullah and Asif Hussain and M A Farid and Shaheen Irfan and Roohul Amin and Ahmed M. Fouda and Atif Nazir and Dehua Hou and Jijun Zou and Shangfeng Du and Muhammad Tahir},
title = {Molybdenum tungsten hydrogen oxide doped with phosphorus for enhanced oxygen/hydrogen evolution reactions},
journal = {RSC Advances},
year = {2024},
volume = {14},
publisher = {Royal Society of Chemistry (RSC)},
month = {sep},
url = {https://xlink.rsc.org/?DOI=D4RA05023A},
number = {38},
pages = {27928--27934},
doi = {10.1039/d4ra05023a}
}
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MLA
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Ullah, Sana, et al. “Molybdenum tungsten hydrogen oxide doped with phosphorus for enhanced oxygen/hydrogen evolution reactions.” RSC Advances, vol. 14, no. 38, Sep. 2024, pp. 27928-27934. https://xlink.rsc.org/?DOI=D4RA05023A.
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