2022
DOI: 10.1021/acsmaterialslett.2c00143
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Charge Transfer of Interfacial Catalysts for Hydrogen Energy

Abstract: The development of multifunctional non-precious transition metal electrocatalysts is technologically significant in hydrogen and oxygen electrochemistry but challenging. Here we exploit interface engineering to construct a novel interface catalyst of Ni3N and Co2N that exhibits multifunctional hydrogen and oxygen electrochemical activities in alkaline media. The interface catalysts of Ni3N/Co2N show superior bifunctional activity for hydrogen electrochemistry comparable to the state-of-the-art Pt catalyst, as … Show more

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Cited by 42 publications
(20 citation statements)
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“…14d). 173 Besides the soluble redox mediators, solid-state redox mediators have also been developed including NiOOH/ Ni(OH) 2 and MnO 2 /MnOOH, [288][289][290][291][292] even though they are only stable in strong alkaline solutions and their redox capacities are limited by their electrode areas and mass loading. The decoupled water splitting concept is further extended to solar-driven decoupled water splitting.…”
Section: Materials Advances Reviewmentioning
confidence: 99%
“…14d). 173 Besides the soluble redox mediators, solid-state redox mediators have also been developed including NiOOH/ Ni(OH) 2 and MnO 2 /MnOOH, [288][289][290][291][292] even though they are only stable in strong alkaline solutions and their redox capacities are limited by their electrode areas and mass loading. The decoupled water splitting concept is further extended to solar-driven decoupled water splitting.…”
Section: Materials Advances Reviewmentioning
confidence: 99%
“…12−16 Therefore, the selection and optimization of battery components has become one of the research hotspots. 17,18 The use of gel polymer electrolytes (GPEs) to reduce contact resistance is a viable approach to the lithium-ion battery design. GPEs are able to trap liquid electrolytes in the electrode while adhering to a solid electrolyte separator, helping to reduce contact resistance and improve ionic conductivity.…”
Section: ■ Introductionmentioning
confidence: 99%
“…With the increasing demand for high energy density and high safety performance batteries, solid-state lithium batteries with high energy density and good safety performance have attracted widespread attention and have great potential for applications. , However, solid-state lithium batteries also face some key problems that need to be solved such as low ionic conductivity and high interface impedance due to solid-state contact. Therefore, it is necessary to further optimize the components and structure of batteries. For separators, it is necessary mainly to separate the anode and cathode of the battery to prevent short circuit, while allowing the rapid transmission of lithium ions. For electrolytes, it is expected to have high conductivity and ion migration number, wide electrochemical window, and good stability. Therefore, the selection and optimization of battery components has become one of the research hotspots. , …”
Section: Introductionmentioning
confidence: 99%
“…3,4 In this regard, with the low overpotential and fast charge transfer kinetics, Pt-based materials exhibit the best electrocatalytic activity for the hydrogen evolution reaction (HER). 5 Unfortunately, the high cost and low crustal abundance hinder their large-scale application. Consequently, it is necessary to devote great efforts to enhancing the utilization efficiency of Pt-based catalysts.…”
mentioning
confidence: 99%