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      Engineering Multifunctional Collaborative Catalytic Interface Enabling Efficient Hydrogen Evolution in All pH Range and Seawater

      1 , 2 ,   1 , 3 , 2 , 1 , 2 , 1 , 4
      Advanced Energy Materials
      Wiley

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          25th anniversary article: MXenes: a new family of two-dimensional materials.

          Recently a new, large family of two-dimensional (2D) early transition metal carbides and carbonitrides, called MXenes, was discovered. MXenes are produced by selective etching of the A element from the MAX phases, which are metallically conductive, layered solids connected by strong metallic, ionic, and covalent bonds, such as Ti2 AlC, Ti3 AlC2 , and Ta4 AlC3 . MXenes -combine the metallic conductivity of transition metal carbides with the hydrophilic nature of their hydroxyl or oxygen terminated surfaces. In essence, they behave as "conductive clays". This article reviews progress-both -experimental and theoretical-on their synthesis, structure, properties, intercalation, delamination, and potential applications. MXenes are expected to be good candidates for a host of applications. They have already shown promising performance in electrochemical energy storage systems. A detailed outlook for future research on MXenes is also presented.
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            Ti3C2 MXene co-catalyst on metal sulfide photo-absorbers for enhanced visible-light photocatalytic hydrogen production

            Scalable and sustainable solar hydrogen production through photocatalytic water splitting requires highly active and stable earth-abundant co-catalysts to replace expensive and rare platinum. Here we employ density functional theory calculations to direct atomic-level exploration, design and fabrication of a MXene material, Ti3C2 nanoparticles, as a highly efficient co-catalyst. Ti3C2 nanoparticles are rationally integrated with cadmium sulfide via a hydrothermal strategy to induce a super high visible-light photocatalytic hydrogen production activity of 14,342 μmol h−1 g−1 and an apparent quantum efficiency of 40.1% at 420 nm. This high performance arises from the favourable Fermi level position, electrical conductivity and hydrogen evolution capacity of Ti3C2 nanoparticles. Furthermore, Ti3C2 nanoparticles also serve as an efficient co-catalyst on ZnS or Zn x Cd1−x S. This work demonstrates the potential of earth-abundant MXene family materials to construct numerous high performance and low-cost photocatalysts/photoelectrodes.
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              An Extended Hückel Theory. I. Hydrocarbons

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                Author and article information

                Contributors
                Journal
                Advanced Energy Materials
                Adv. Energy Mater.
                Wiley
                1614-6832
                1614-6840
                July 28 2019
                September 2019
                July 30 2019
                September 2019
                : 9
                : 34
                : 1901333
                Affiliations
                [1 ]State Key Lab of Fine ChemicalsLiaoning Key Lab for Energy Materials and Chemical EngineeringPSU‐DUT Joint Center for Energy ResearchDalian University of Technology Dalian 116024 China
                [2 ]Education Ministry Key Lab of Materials Modification by LaserIon and Electron BeamsDalian University of Technology Dalian 116024 China
                [3 ]Key Laboratory for Micro/Nano Technology and System of Liaoning ProvinceDalian University of Technology Dalian 116023 China
                [4 ]College of Chemical EngineeringBeijing University of Chemical Technology Beijing 100029 China
                Article
                10.1002/aenm.201901333
                03566909-4fac-400b-ab64-a9b230d673b4
                © 2019

                http://onlinelibrary.wiley.com/termsAndConditions#vor

                http://doi.wiley.com/10.1002/tdm_license_1.1

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