Incorporation of manganese carbonyl sulfide ((Mn2S2 (CO)7) and mixed metal oxides-decorated reduced graphene oxide (MnFeCoO4/rGO) as a selective anode toward efficient OER from seawater splitting under neutral pH conditions

Applying non-noble metal-based electrocatalysts toward efficient and cost-effective oxygen evolution reaction (OER) from seawater under mild pH conditions are of paramount importance for advancing green hydrogen production through renewable energy. Amongst several predicaments, the presence of chlor...

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Main Authors: Ghouri, Zafar Khan, Elsaid, Khaled, El-Sayed Nasef, Mohamed Mahmoud, Badreldin, Ahmed, Wubulikasimu, Yiming, Abdel Wahab, Ahmed
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Published: Elsevier Ltd 2022
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Online Access:http://eprints.utm.my/103920/
http://dx.doi.org/10.1016/j.renene.2022.03.137
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spelling my.utm.1039202023-12-06T04:46:09Z http://eprints.utm.my/103920/ Incorporation of manganese carbonyl sulfide ((Mn2S2 (CO)7) and mixed metal oxides-decorated reduced graphene oxide (MnFeCoO4/rGO) as a selective anode toward efficient OER from seawater splitting under neutral pH conditions Ghouri, Zafar Khan Elsaid, Khaled El-Sayed Nasef, Mohamed Mahmoud Badreldin, Ahmed Wubulikasimu, Yiming Abdel Wahab, Ahmed Q Science (General) TP Chemical technology Applying non-noble metal-based electrocatalysts toward efficient and cost-effective oxygen evolution reaction (OER) from seawater under mild pH conditions are of paramount importance for advancing green hydrogen production through renewable energy. Amongst several predicaments, the presence of chloride ions in seawater competes with the OER as a more kinetically facile anodic reaction that results in the formation of toxic chlorine products. Herein, we propose a novel material combination, which exhibits higher OER activity and selectively over chlorine evolution reaction (CER) during simulated saline water electrolysis under neutral pH conditions. The proposed hybrid nanocomposite system, based on electroactive mixed metal oxides-decorated reduced graphene oxide (MnFeCoO4/rGO) which is incorporated with manganese carbonyl sulfide (Mn2S2(CO)7), are fabricated by a single-step hydrothermal technique. Benefiting from their heterogeneous interfaces, lower charge transfer resistance, and higher electrochemical (EC) and BET surface area, the hybrid graphene MnFeCoO4/Mn2S2(CO)7 nanocomposite (HGNC) yields the best performance among various options towards OER from pH-neutral seawater (1 M PB + 0.6 M NaCl; pH 7.0) electrolysis, with small Tafel slope of 74.1 mVdec−1 and correspondingly low overpotential of ∼310 mV to achieve a current density of 10 mAcm−2. The high activity at the aforementioned current density allows for overpotential operation below the minimum thermodynamic requirement needed for activating CER, thus ruling out progression of CER. Further, benefiting from the strong coupling effect between the MnFeCoO4/Mn2S2(CO)7 species and the graphene support, appreciable stability was achieved for 15 h to deliver steady-state current stability without obvious decay, which demonstrating that HGNC is a promising candidate as an OER electrocatalyst for neutral seawater electrolysis. Elsevier Ltd 2022-05 Article PeerReviewed Ghouri, Zafar Khan and Elsaid, Khaled and El-Sayed Nasef, Mohamed Mahmoud and Badreldin, Ahmed and Wubulikasimu, Yiming and Abdel Wahab, Ahmed (2022) Incorporation of manganese carbonyl sulfide ((Mn2S2 (CO)7) and mixed metal oxides-decorated reduced graphene oxide (MnFeCoO4/rGO) as a selective anode toward efficient OER from seawater splitting under neutral pH conditions. Renewable Energy, 190 (NA). pp. 1029-1040. ISSN 0960-1481 http://dx.doi.org/10.1016/j.renene.2022.03.137 DOI:10.1016/j.renene.2022.03.137
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
topic Q Science (General)
TP Chemical technology
spellingShingle Q Science (General)
TP Chemical technology
Ghouri, Zafar Khan
Elsaid, Khaled
El-Sayed Nasef, Mohamed Mahmoud
Badreldin, Ahmed
Wubulikasimu, Yiming
Abdel Wahab, Ahmed
Incorporation of manganese carbonyl sulfide ((Mn2S2 (CO)7) and mixed metal oxides-decorated reduced graphene oxide (MnFeCoO4/rGO) as a selective anode toward efficient OER from seawater splitting under neutral pH conditions
description Applying non-noble metal-based electrocatalysts toward efficient and cost-effective oxygen evolution reaction (OER) from seawater under mild pH conditions are of paramount importance for advancing green hydrogen production through renewable energy. Amongst several predicaments, the presence of chloride ions in seawater competes with the OER as a more kinetically facile anodic reaction that results in the formation of toxic chlorine products. Herein, we propose a novel material combination, which exhibits higher OER activity and selectively over chlorine evolution reaction (CER) during simulated saline water electrolysis under neutral pH conditions. The proposed hybrid nanocomposite system, based on electroactive mixed metal oxides-decorated reduced graphene oxide (MnFeCoO4/rGO) which is incorporated with manganese carbonyl sulfide (Mn2S2(CO)7), are fabricated by a single-step hydrothermal technique. Benefiting from their heterogeneous interfaces, lower charge transfer resistance, and higher electrochemical (EC) and BET surface area, the hybrid graphene MnFeCoO4/Mn2S2(CO)7 nanocomposite (HGNC) yields the best performance among various options towards OER from pH-neutral seawater (1 M PB + 0.6 M NaCl; pH 7.0) electrolysis, with small Tafel slope of 74.1 mVdec−1 and correspondingly low overpotential of ∼310 mV to achieve a current density of 10 mAcm−2. The high activity at the aforementioned current density allows for overpotential operation below the minimum thermodynamic requirement needed for activating CER, thus ruling out progression of CER. Further, benefiting from the strong coupling effect between the MnFeCoO4/Mn2S2(CO)7 species and the graphene support, appreciable stability was achieved for 15 h to deliver steady-state current stability without obvious decay, which demonstrating that HGNC is a promising candidate as an OER electrocatalyst for neutral seawater electrolysis.
format Article
author Ghouri, Zafar Khan
Elsaid, Khaled
El-Sayed Nasef, Mohamed Mahmoud
Badreldin, Ahmed
Wubulikasimu, Yiming
Abdel Wahab, Ahmed
author_facet Ghouri, Zafar Khan
Elsaid, Khaled
El-Sayed Nasef, Mohamed Mahmoud
Badreldin, Ahmed
Wubulikasimu, Yiming
Abdel Wahab, Ahmed
author_sort Ghouri, Zafar Khan
title Incorporation of manganese carbonyl sulfide ((Mn2S2 (CO)7) and mixed metal oxides-decorated reduced graphene oxide (MnFeCoO4/rGO) as a selective anode toward efficient OER from seawater splitting under neutral pH conditions
title_short Incorporation of manganese carbonyl sulfide ((Mn2S2 (CO)7) and mixed metal oxides-decorated reduced graphene oxide (MnFeCoO4/rGO) as a selective anode toward efficient OER from seawater splitting under neutral pH conditions
title_full Incorporation of manganese carbonyl sulfide ((Mn2S2 (CO)7) and mixed metal oxides-decorated reduced graphene oxide (MnFeCoO4/rGO) as a selective anode toward efficient OER from seawater splitting under neutral pH conditions
title_fullStr Incorporation of manganese carbonyl sulfide ((Mn2S2 (CO)7) and mixed metal oxides-decorated reduced graphene oxide (MnFeCoO4/rGO) as a selective anode toward efficient OER from seawater splitting under neutral pH conditions
title_full_unstemmed Incorporation of manganese carbonyl sulfide ((Mn2S2 (CO)7) and mixed metal oxides-decorated reduced graphene oxide (MnFeCoO4/rGO) as a selective anode toward efficient OER from seawater splitting under neutral pH conditions
title_sort incorporation of manganese carbonyl sulfide ((mn2s2 (co)7) and mixed metal oxides-decorated reduced graphene oxide (mnfecoo4/rgo) as a selective anode toward efficient oer from seawater splitting under neutral ph conditions
publisher Elsevier Ltd
publishDate 2022
url http://eprints.utm.my/103920/
http://dx.doi.org/10.1016/j.renene.2022.03.137
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