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Applications of 2D MXenes in energy conversion and storage systems

机译:2D mxenes在能量转换和储存系统中的应用

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摘要

Transition metal carbides and nitrides (MXenes), a family of two-dimensional (2D) inorganic compounds, are materials composed of a few atomic layers of transition metal carbides, nitrides, or carbonitrides. Ti3C2, the first 2D layered MXene, was isolated in 2011. This material, which is a layered bulk material analogous to graphite, was derived from its 3D phase, Ti3AlC2 MAX. Since then, material scientists have either determined or predicted the stable phases of 200 different MXenes based on combinations of various transition metals such as Ti, Mo, V, Cr, and their alloys with C and N. Extensive experimental and theoretical studies have shown their exciting potential for energy conversion and electrochemical storage. To this end, we comprehensively summarize the current advances in MXene research. We begin by reviewing the structure types and morphologies and their fabrication routes. The review then discusses the mechanical, electrical, optical, and electrochemical properties of MXenes. The focus then turns to their exciting potential in energy storage and conversion. Energy storage applications include electrodes in rechargeable lithium-and sodium-ion batteries, lithium-sulfur batteries, and supercapacitors. In terms of energy conversion, photocatalytic fuel production, such as hydrogen evolution from water splitting, and carbon dioxide reduction are presented. The potential of MXenes for the photocatalytic degradation of organic pollutants in water, such as dye waste, is also addressed, along with their promise as catalysts for ammonium synthesis from nitrogen. Finally, their application potential is summarized.
机译:过渡金属碳化物和氮化物(MxENES),一系列二维(2D)无机化合物,是由几种过渡金属碳化物,氮化物或碳氮化物组成的材料。 Ti3C2是第一个2D层蒙氏蛋白,在2011年中分离。该材料是与石墨类似的层状散装材料,源自其3D相,Ti3AlC2 Max。从那时起,材料科学家已经确定或预测了基于各种过渡金属如Ti,Mo,V,Cr的组合的稳定阶段的稳定阶段,例如Ti,Mo,V,Cr,以及与C和N.的合金的广泛的实验和理论研究显示了能源转换和电化学储存的激动潜力。为此,我们全面总结了MXENE研究的目前的进步。我们首先审查结构类型和形态及其制造路线。然后审查MxEnes的机械,电气,光学和电化学性质。然后,焦点转向能量存储和转换中的激动潜力。能量存储应用包括可充电锂和钠离子电池,锂 - 硫电池和超级电容器中的电极。就能量转换而言,提出了光催化燃料生产,例如水分裂的氢化和二氧化碳减少。还解决了染料废物等水中有机污染物的光催化降解有机污染物的潜力,以及它们作为氮气合成的催化剂的承诺。最后,总结了他们的应用潜力。

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  • 来源
    《Chemical Society Reviews》 |2019年第1期|共62页
  • 作者单位

    Leibniz Inst Solid State &

    Mat Res Dresden IFW Dr Helmholtzstr 20 D-01069 Dresden Germany;

    Leibniz Inst Solid State &

    Mat Res Dresden IFW Dr Helmholtzstr 20 D-01069 Dresden Germany;

    Leibniz Inst Solid State &

    Mat Res Dresden IFW Dr Helmholtzstr 20 D-01069 Dresden Germany;

    Soochow Univ Sch Energy Soochow Inst Energy &

    Mat Innovat SIEMIS Optoelect &

    Energy Suzhou 215006 Peoples R China;

    Soochow Univ Sch Energy Soochow Inst Energy &

    Mat Innovat SIEMIS Optoelect &

    Energy Suzhou 215006 Peoples R China;

    Leibniz Inst Solid State &

    Mat Res Dresden IFW Dr Helmholtzstr 20 D-01069 Dresden Germany;

    Univ Jinan iAIR Jinan 250022 Shandong Peoples R China;

    Soochow Univ Sch Energy Soochow Inst Energy &

    Mat Innovat SIEMIS Optoelect &

    Energy Suzhou 215006 Peoples R China;

    Leibniz Inst Solid State &

    Mat Res Dresden IFW Dr Helmholtzstr 20 D-01069 Dresden Germany;

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