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Supplementary information files for "Quantum confinement-induced anti-electrooxidation of metallic nickel electrocatalysts for hydrogen oxidation"

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DataCite Commons2025-02-27 更新2025-04-16 收录
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https://repository.lboro.ac.uk/articles/dataset/Supplementary_information_files_for_Quantum_confinement-induced_anti-electrooxidation_of_metallic_nickel_electrocatalysts_for_hydrogen_oxidation_/28497740/1
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Supplementary files for article "Quantum confinement-induced anti-electrooxidation of metallic nickel electrocatalysts for hydrogen oxidation"The anion-exchange-membrane fuel cell (AEMFC) is an attractive and cost-effective energy-conversion technology because it can use Earth-abundant and low-cost non-precious metal catalysts. However, non-precious metals used in AEMFCs to catalyse the hydrogen oxidation reaction are prone to self-oxidation, resulting in irreversible failure. Here we show a quantum well-like catalytic structure (QWCS), constructed by atomically confining Ni nanoparticles within a carbon-doped-MoO<sub><em>x</em></sub>/MoO<sub><em>x</em></sub> heterojunction (C-MoO<sub><em>x</em></sub>/MoO<sub><em>x</em></sub>) that can selectively transfer external electrons from the hydrogen oxidation reaction while remaining itself metallic. Electrons of Ni nanoparticles gain a barrier of 1.11 eV provided by the QWCS leading to Ni stability up to 1.2 V versus the reversible hydrogen electrode (V<sub>RHE</sub>) whereas electrons released from the hydrogen oxidation reaction easily cross the barrier by a gating operation of QWCS upon hydrogen adsorption. The QWCS-catalysed AEMFC achieved a high-power density of 486 mW mg<sub>Ni</sub><sup>−1</sup> and withstood hydrogen starvation operations during shutdown–start cycles, whereas a counterpart AEMFC without QWCS failed in a single cycle.© The Author(s), CC BY 4.0
提供机构:
Loughborough University
创建时间:
2025-02-26
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