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Electrocatalytic water oxidation of coral-like porous Zn-CoP nanohybrids synergistically inspired by photothermal and photoelectronic effects

The electrocatalytic oxygen evolution reaction (OER) plays a crucial role in the recycling of sustainable energy by coupling with reduction reactions, but still suffers from sluggish kinetics and a high overpotential. In this work, we report an electrocatalytic strategy synergistically inspired by p...

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Published in:Journal of materials chemistry. A, Materials for energy and sustainability Materials for energy and sustainability, 2023-08, Vol.11 (31), p.16695-1673
Main Authors: Ma, Zhangyu, Wang, Shasha, Lu, Xuyun, Chang, Yanan, Bao, Jianchun, Liu, Ying
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cited_by cdi_FETCH-LOGICAL-c281t-c28f11acd89c6dc73d37a7c635e7e374186ee583245608da60950e4c337ee0633
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container_issue 31
container_start_page 16695
container_title Journal of materials chemistry. A, Materials for energy and sustainability
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creator Ma, Zhangyu
Wang, Shasha
Lu, Xuyun
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Bao, Jianchun
Liu, Ying
description The electrocatalytic oxygen evolution reaction (OER) plays a crucial role in the recycling of sustainable energy by coupling with reduction reactions, but still suffers from sluggish kinetics and a high overpotential. In this work, we report an electrocatalytic strategy synergistically inspired by photothermal and photoelectronic effects to substantially ameliorate the reaction kinetics of the OER, with coral-like porous Zn-doped CoP nanohybrids (Zn-CoP NHs) as the typical catalyst. It is demonstrated that the Zn dopant both modifies the electronic structure of the CoP subject and enhances the light energy capture capacity of the Zn-CoP NHs, leading to distinct photothermal and photoelectronic responses. The notable photothermal effect can offset the endothermic enthalpy change of the OER exactly and accelerate the interface charge transfer. The remarkable photoelectronic response of the Zn-CoP NHs lowers the OER activation energy (from 29.2 kJ mol −1 to 10.2 kJ mol −1 ), thereby contributing to improved reaction kinetics. Moreover, the coral-like porous architecture of the Zn-CoP NHs provides abundant electrochemical active sites and assists mass transfer. Benefiting from these promoting effects, the Zn-CoP NHs achieve remarkable electrocatalytic OER performances under a light irradiation of 808 nm, with an overpotential of 189 and 297 mV to afford a current density of 10 and 100 mA cm −2 , respectively, outperforming those without light illumination (260 and 345 mV) and its CoP counterpart (308 and 386 mV), as well as some recently reported transition metal compounds. In comparison with conventional microstructure and electronic structure tuning strategies, this work reveals a unique and universal infrared light-assisted route, injecting new vitality into the development of new and advanced electrocatalytic platforms. This work reports a coral-like porous Zn-CoP nanohybrid with notable photothermal and photoelectronic effects, which improve electron migrate and reaction kinetics jointly, thereby contributing to superior electrocatalytic OER and OWS performances.
doi_str_mv 10.1039/d3ta01890c
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Benefiting from these promoting effects, the Zn-CoP NHs achieve remarkable electrocatalytic OER performances under a light irradiation of 808 nm, with an overpotential of 189 and 297 mV to afford a current density of 10 and 100 mA cm −2 , respectively, outperforming those without light illumination (260 and 345 mV) and its CoP counterpart (308 and 386 mV), as well as some recently reported transition metal compounds. In comparison with conventional microstructure and electronic structure tuning strategies, this work reveals a unique and universal infrared light-assisted route, injecting new vitality into the development of new and advanced electrocatalytic platforms. 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The notable photothermal effect can offset the endothermic enthalpy change of the OER exactly and accelerate the interface charge transfer. The remarkable photoelectronic response of the Zn-CoP NHs lowers the OER activation energy (from 29.2 kJ mol −1 to 10.2 kJ mol −1 ), thereby contributing to improved reaction kinetics. Moreover, the coral-like porous architecture of the Zn-CoP NHs provides abundant electrochemical active sites and assists mass transfer. Benefiting from these promoting effects, the Zn-CoP NHs achieve remarkable electrocatalytic OER performances under a light irradiation of 808 nm, with an overpotential of 189 and 297 mV to afford a current density of 10 and 100 mA cm −2 , respectively, outperforming those without light illumination (260 and 345 mV) and its CoP counterpart (308 and 386 mV), as well as some recently reported transition metal compounds. 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source Royal Society of Chemistry:Jisc Collections:Royal Society of Chemistry Read and Publish 2022-2024 (reading list)
subjects Catalysts
Charge transfer
Chemical reduction
Electrochemistry
Electronic structure
Enthalpy
Irradiation
Kinetics
Light irradiation
Mass transfer
Metal compounds
Oxidation
Oxygen evolution reactions
Reaction kinetics
Renewable energy
Sustainability
Transition metal compounds
Zinc
title Electrocatalytic water oxidation of coral-like porous Zn-CoP nanohybrids synergistically inspired by photothermal and photoelectronic effects
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