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      Synergistic activation of peroxymonosulfate via oxygen vacancy-rich CoxMn3-xO4/montmorillonite catalyst for environmental remediation

      , , ,
      Applied Clay Science
      Elsevier BV

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          Cobalt-catalyzed sulfate radical-based advanced oxidation: A review on heterogeneous catalysts and applications

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            Single Cobalt Atoms Anchored on Porous N-Doped Graphene with Dual Reaction Sites for Efficient Fenton-like Catalysis

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              Ultrathin Iron-Cobalt Oxide Nanosheets with Abundant Oxygen Vacancies for the Oxygen Evolution Reaction.

              Electrochemical water splitting is a promising method for storing light/electrical energy in the form of H2 fuel; however, it is limited by the sluggish anodic oxygen evolution reaction (OER). To improve the accessibility of H2 production, it is necessary to develop an efficient OER catalyst with large surface area, abundant active sites, and good stability, through a low-cost fabrication route. Herein, a facile solution reduction method using NaBH4 as a reductant is developed to prepare iron-cobalt oxide nanosheets (Fex Coy -ONSs) with a large specific surface area (up to 261.1 m(2) g(-1) ), ultrathin thickness (1.2 nm), and, importantly, abundant oxygen vacancies. The mass activity of Fe1 Co1 -ONS measured at an overpotential of 350 mV reaches up to 54.9 A g(-1) , while its Tafel slope is 36.8 mV dec(-1) ; both of which are superior to those of commercial RuO2 , crystalline Fe1 Co1 -ONP, and most reported OER catalysts. The excellent OER catalytic activity of Fe1 Co1 -ONS can be attributed to its specific structure, e.g., ultrathin nanosheets that could facilitate mass diffusion/transport of OH(-) ions and provide more active sites for OER catalysis, and oxygen vacancies that could improve electronic conductivity and facilitate adsorption of H2 O onto nearby Co(3+) sites.
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                Author and article information

                Journal
                Applied Clay Science
                Applied Clay Science
                Elsevier BV
                01691317
                October 2022
                October 2022
                : 228
                : 106625
                Article
                10.1016/j.clay.2022.106625
                1b1ea5a0-0b55-4d90-8e6f-7ce6ca0a6896
                © 2022

                https://www.elsevier.com/tdm/userlicense/1.0/

                https://doi.org/10.15223/policy-017

                https://doi.org/10.15223/policy-037

                https://doi.org/10.15223/policy-012

                https://doi.org/10.15223/policy-029

                https://doi.org/10.15223/policy-004

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