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State-of-the-Art Advances and Perspectives for Electrocatalysis

https://doi.org/10.1007/978-3-030-27161-9_13
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Ultrathin MoS2 nanosheets growing within an in-situ-formed template as efficient electrocatalysts for hydrogen evolution
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Porous tremella-like MoS2/polyaniline hybrid composite with enhanced performance for lithium-ion battery anodes
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Chemically activating MoS2 via spontaneous atomic palladium interfacial doping towards efficient hydrogen evolution
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MoS2 nanoflower-decorated reduced graphene oxide paper for high-performance hydrogen evolution reaction
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Gemini surfactant assisted hydrothermal synthesis of nanotile-like MoS2/graphene hybrid with enhanced lithium storage performance
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Copper(II) phthalocyanine/metal organic framework electrocatalyst for hydrogen evolution reaction application
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Electrocatalytic Hydrogen Production Properties of Poly(3-aminobenzoic acid) doped with Metal Organic Frameworks
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Polyaniline-metal organic framework nanocomposite as an efficient electrocatalyst for hydrogen evolution reaction
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Effect of microstructure on HER catalytic properties of MoS2 vertically standing nanosheets
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Electrocatalysts for the generation of hydrogen, oxygen and synthesis gas
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Conducting MoS<sub>2</sub> Nanosheets as Catalysts for Hydrogen Evolution Reaction
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no DOI — not checkedMa B, Chen TT, Li QY, Qin HY, Dong XY, Zang SQ (2019) Bimetallic-organic-framework derived nanohybrid Cu0.9Co2.1.S4@MoS2 for highly performance visible-light-catalytic hydrogen evolution. Materials 2:1134–1148
no DOI — not checkedWang Y, Lia X, Wang C (2017) Synthesis and characterization of MoS2 nanocomposites by a high pressure hydrothermal method. J Non-Oxide Glasses 9:47–54
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