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首页> 外文期刊>Chemosphere >Interfacial engineering in 3D/2D and 1D/2D bismuth ferrite (BiFeO_3)/ Graphene oxide nanocomposites for the enhanced photocatalytic activities under sunlight
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Interfacial engineering in 3D/2D and 1D/2D bismuth ferrite (BiFeO_3)/ Graphene oxide nanocomposites for the enhanced photocatalytic activities under sunlight

机译:3D / 2D和1D / 2D铋铁氧体(BiFeO_3)/石墨烯氧化物纳米复合材料在阳光下增强光催化活动的界面工程

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摘要

3D-particulate and 1D-fiber structures of multiferroic bismuth ferrite (BiFeO3/BFO) and their composites with 2D-graphene oxide (GO) have been developed to exploit the different scheme of interfacial engineering as 3D/2D and 1D/2D systems. Particulates and fibers of BFO were developed via sol-gel and electrospinning fabrication approaches respectively and their integration with GO was performed via the ultrasonic-assisted chemical reduction process. The crystalline and phase formation of BiFeO3 and GO was confirmed from the XRD patterns obtained. The electron microscopic images revealed the characteristic integration of 3D particulates (with average size of 100 nm) and 1D fibers (with diameter of similar to 150 nm and few mu m length) onto the 2D GO layers (thickness of -27 nm). XPS analysis revealed that the BFO nanostructures have been integrated onto the GO through chemisorptions process, where it indicated that the ultrasonic process engineers the interface through the chemical modification of the surface of these 3D/2D and 1D/2D nanostructures. The photophysical studies such as the impedance and photocurrent measurements showed that the charge separation and recombination resistance is significantly enhanced in the system, which can directly be attributed to the effective interfacial engineering in the developed hetero-morphological composites. The degradation studies against a model pollutant Rhodamine B revealed that the developed nanocomposites exhibit superior photocatalytic activity via the effective generation of OH radicals as confirmed by the radical analysis studies (100% degradation in 150 and 90 min for 15% GO/BFO particulate and fiber composites, respectively). The developed system also demonstrated excellent photocatalytic recyclability, indicated their enhanced stability.
机译:已经开发了3D-颗粒和1D-纤维结构和具有2D-石墨烯氧化物(GO)的复合材料以利用界面工程的不同方案作为3D / 2D和1D / 2D系统。通过溶胶 - 凝胶和静电纺织制造方法显影BFO的颗粒和纤维,并通过超声波辅助的化学还原过程进行它们与Go的整合。从获得的XRD图案中确认了BifeO3的结晶和相形成。电子显微镜图像显示3D颗粒(平均尺寸为100nm)和1d纤维(直径与150nm,μm长)的特征整合到2d Go层(厚度为-27nm)上。 XPS分析显示,BFO纳米结构已经整合到通过化学样品过程中,其中超声过程通过这些3D / 2D和1D / 2D纳米结构的表面的化学改性工程。诸如阻抗和光电流测量的光物理研究表明,在系统中,电荷分离和重组抗性显着增强,其可以直接归因于发育的异质形态复合材料中的有效界面工程。针对模型污染物罗丹明B的降解研究表明,发育纳米复合材料通过自由基分析研究证实的有效产生了优异的光催化活性(150%和15%GO / BFO颗粒和纤维的100%降解100%降解复合材料)。开发系统还表现出优异的光催化可回收性,表明其增强的稳定性。

著录项

  • 来源
    《Chemosphere》 |2021年第12期|131280.1-131280.11|共11页
  • 作者单位

    Univ Madras Natl Ctr Nanosci & Nanotechnol Guindy Campus Chennai 600025 Tamil Nadu India|SRM IST Funct Mat & Energy Device Lab Dept Phys & Nanotechnol Kattankulathur 603203 Chengalpattu India;

    Univ Madras Natl Ctr Nanosci & Nanotechnol Guindy Campus Chennai 600025 Tamil Nadu India|Jain Univ Ctr Nano & Mat Sci Bangalore 562112 Karnataka India;

    SRM IST Funct Mat & Energy Device Lab Dept Phys & Nanotechnol Kattankulathur 603203 Chengalpattu India;

    SRM IST Funct Mat & Energy Device Lab Dept Phys & Nanotechnol Kattankulathur 603203 Chengalpattu India;

    Univ Madras Natl Ctr Nanosci & Nanotechnol Guindy Campus Chennai 600025 Tamil Nadu India;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Multiferroics; Bismuth ferrite; Graphene oxide; Nanostructures; Photocatalysis; Ultrasonic-process; Interface engineering;

    机译:多法学;铋铁氧体;石英氧化物;纳米结构;光催化;超声波过程;界面工程;

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