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  • Just add water to split water: ultrahigh-performance bifunctional electrocatalysts fabricated using eco-friendly heterointerfacing of NiCo diselenides

    Author(s)
    Chen, Dongliang
    Xu, Zhenmiao
    Chen, Wei
    Chen, Guangliang
    Huang, Jun
    Song, Changsheng
    Li, Chaorong
    Ostrikov, Kostya Ken
    Griffith University Author(s)
    Ostrikov, Ken
    Year published
    2020
    Metadata
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    Abstract
    Electrochemical water splitting is one of the most promising ways for clean hydrogen energy production. Along with using earth-abundant, atomically engineered catalysts that are highly active and stable, clean, chemical-waste-free catalyst production—using minimum resources—is a major hurdle toward achieving zero-carbon-emission commercial operations. Herein, we propose a clean way to fabricate NiSe2–CoSe2 on nickel–cobalt foam (NCF) using pure water for the in situ sprouting of NiCo layered double hydroxide (LDH) precursors. The excellent electrocatalytic activity for overall water splitting in alkaline electrolytes is ...
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    Electrochemical water splitting is one of the most promising ways for clean hydrogen energy production. Along with using earth-abundant, atomically engineered catalysts that are highly active and stable, clean, chemical-waste-free catalyst production—using minimum resources—is a major hurdle toward achieving zero-carbon-emission commercial operations. Herein, we propose a clean way to fabricate NiSe2–CoSe2 on nickel–cobalt foam (NCF) using pure water for the in situ sprouting of NiCo layered double hydroxide (LDH) precursors. The excellent electrocatalytic activity for overall water splitting in alkaline electrolytes is highlighted by the overpotentials of NiSe2–CoSe2/NCF for delivering current densities of 10 and 400 mA cm−2 (j10 and j400, respectively) at only 24 and 257 mV for hydrogen evolution reaction (HER) and 250 and 346 mV for oxygen evolution reaction (OER), as well as the fast reaction kinetics affording small Tafel slope values of 24 (HER) and 48 (OER) mV dec−1, respectively. NiSe2–CoSe2/NCF exhibits excellent electrocatalytic performance and structural stability, evidenced by the unchanged polarization curve after 104 cycles of CV tests and low decay of high current density (j100) after 100 h of HER and OER measurements. Theoretical analysis revealed that the Co atoms dispersed on the heterointerfaces between the NiSe2 and CoSe2 phases act as the electrocatalytic sites.
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    Journal Title
    Journal of Materials Chemistry A
    Volume
    8
    Issue
    24
    DOI
    https://doi.org/10.1039/d0ta02121k
    Subject
    Macromolecular and materials chemistry
    Materials engineering
    Other engineering
    Science & Technology
    Physical Sciences
    Chemistry, Physical
    Energy & Fuels
    Publication URI
    http://hdl.handle.net/10072/396881
    Collection
    • Journal articles

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