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Carbon-based nanomaterials and ZnO ternary compound layers grown by laser technique for environmental and energy storage applications

机译:通过激光技术为环境和能量存储应用生长的碳基纳米材料和ZnO三元化合物层

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摘要

Carbon nanotube - highly reduced graphene oxide - transition metal oxide (ZnO) nanohybrid layers were synthesized using a one-step laser technique. Commercial multiwall carbon nanotubes (MWCNTs), graphene oxide (GO) platelets and ZnO nanoparticles were used as starting materials. We discuss the influence of carbon/metal oxide ratio on the physico-chemical properties of the nanohybrid layers, geometrical characteristics, shape and dimensions of constituent nanoentities, chemical composition and chemical bonding states, optical properties, UV-visible absorption, band gap values, as well as charge transfer properties. In the followings the relation between these properties and functional characteristics, removal of water contaminants, antibiotic molecules, and charge storage performances of the ternary, MWCNTs/reduced GO/ZnO layers are presented, identifying the optimum relative concentrations of the constituting nanomaterials. The high photocatalytic efficiencies both under UV and visible light irradiations, even after several consecutive degradation cycles, were attributed to effective separation of photogenerated charge carriers by carbon nanomaterials as well as formation of oxygen deficient ZnO(x-1 )nanocrystals. The enhanced charge storage capacity of ternary nanohybrid electrodes is based on combined electrochemical double layer capacitance and pseudocapacitance implying redox reactions on the surface and subsurface of the layers in contact with the electrolyte. Both functional properties are strongly influenced by the relative concentrations of the nanomaterials constituting the ternary layers.
机译:使用一步激光技术合成碳纳米管 - 高度还原的石墨烯氧化物 - 过渡金属氧化物(ZnO)纳米胺层。商业多壁碳纳米管(MWCNT),石墨烯(GO)血小板和ZnO纳米颗粒用作原料。我们讨论碳/金属氧化物比对组成纳米型,化学成分和化学粘合状态,光学性质,UV可见吸收,带隙值的几何特征,形状和尺寸的影响。以及电荷转移属性。在以下内容中,提出了这些性质和功能特征的关系,提出了水污染物,抗生素分子和电荷存储性能,鉴定了构成纳米材料的最佳相对浓度。在UV和可见光照射下的高光催化效率,即使在几个连续的降解循环之后,也归因于通过碳纳米材料有效地分离光发化电荷载体,以及缺氧ZnO(X-1)纳米晶体的形成。三元纳米百合电极的增强电荷存储容量基于组合电化学双层电容和假偶像暗示在与电解质接触的层的表面和地下的氧化还原反应。既有功能性都受到构成三元层的纳米材料的相对浓度的强烈影响。

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  • 来源
    《Applied Surface Science》 |2020年第15期|145359.1-145359.15|共15页
  • 作者单位

    Natl Inst Lasers Plasma & Radiat Phys POB MG 36 Bucharest 77125 Romania|Univ Bucharest Fac Phys Atomistilor 405 405 Magurele 77125 Romania;

    Natl Inst Lasers Plasma & Radiat Phys POB MG 36 Bucharest 77125 Romania;

    CSIC Inst Ciencia Mat Barcelona ICMAB Campus UAB E-08193 Barcelona Spain;

    Natl Inst Mat Phys POB MG 7 Bucharest 77125 Romania;

    Natl Inst Lasers Plasma & Radiat Phys POB MG 36 Bucharest 77125 Romania|CSIC Inst Ciencia Mat Barcelona ICMAB Campus UAB E-08193 Barcelona Spain;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Multifunctional carbon-metal oxide nanohybrids; Laser deposition; Photocatalysis; Energy storage;

    机译:多官能碳 - 金属氧化物纳米油状物;激光沉积;光催化;能量存储;

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