首页> 外文期刊>Applied Catalysis, B. Environmental: An International Journal Devoted to Catalytic Science and Its Applications >Computationally guided synthesis of (2D/3D/2D) rGO/Fe2O3/g-C3N4 nanostructure with improved charge separation and transportation efficiency for degradation of pharmaceutical molecules
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Computationally guided synthesis of (2D/3D/2D) rGO/Fe2O3/g-C3N4 nanostructure with improved charge separation and transportation efficiency for degradation of pharmaceutical molecules

机译:用改善的电荷分离和药物分子降解的电荷分离和运输效率来计算(2D / 3D / 2D)RGO / Fe2O3 / G-C3N4纳米结构的合成

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摘要

In this study, we designed and successfully prepared all solid state 2D/3D/2D rGO/Fe2O3/g-C3N4 nanocomposite by embedding 3D Fe2O3 nanoparticles on 2D g-C3N4 nanosheets to for 3D/2D Fe2O3/g-C3N4 followed by the addition of 2D rGO nanosheets via a simple hydrothermal technique with the support of response surface methodology for the first time. The formation of this unique 2D/3D/2D heterojunction leads to generate several nanochannels in their interfacial contact for high-speed photoinduced charge transfer. The considerable enhancement in photoinduced charge transportation and migration efficiency resulted in significant visible-lightdriven degradation of emerging pharmaceutical condemnations. The 3D/2D Fe2O3/g-C3N4 nanocomposite was optimized by various concentrations of Fe2O3 in g-C3N4, followed by the optimization of rGO concentration in 2D/3D/2D rGO/Fe2O3/g-C3N4 nanocomposite to obtain maximum degradation efficiency. We observed that the 3% of rGO in 4% Fe2O3/g-C3N4 nanocomposite exhibited superior photocatalytic ability, nearly 22 times and 16 times higher than pristine g-C3N4 nanosheets towards tetracycline and ciprofloxacin degradation, respectively. The synergistic effect between 2D/3D/2D g- rGO/Fe2O3/g-C3N4 nanocomposites and the photocatalytic mechanism was well studied through various characterization techniques like XRD, FTIR, SEM-EDX-mapping, HR-TEM, UV-vis DRS, PL, XPS and EPR. In addition, the 2D/3D/2D rGO/Fe2O3/g-C3N4 nanocomposite exhibits excellent recyclability and stability, establishing a promising application in environmental remediation. This research would provide a noteworthy platform for the extensive photocatalytic properties of 2D/3D/2D heterojunction nanocomposite system with enhanced charge migration and separation.
机译:在这项研究中,我们通过将3D Fe2O3纳米粒子嵌入到3D / 2D Fe2O3 / G-C3N4上的3D Fe2O3纳米粒子的嵌入3D Fe2O3纳米粒子设计和成功地制备了所有固态2D / 3D / 2D rgo / Fe2O3 / G-C3N4纳米复合材料通过简单的水热技术,第一次通过简单的水热技术支持响应表面方法。这种独特的2D / 3D / 2D异质结的形成导致它们在其界面接触中产生几个纳米,以实现高速光抑制电荷转移。光致电荷运输和迁移效率的相当大的增强导致了新兴药物谴责的显着可见光亮起的降解。通过各种浓度的G-C3N4中的3D / 2D FE2O3 / G-C3N4纳米复合材料在G-C3N4中进行了优化,然后在2D / 3D / 2D rgo / Fe2O3 / G-C3N4纳米复合物中优化Rgo浓度,以获得最大的降解效率。我们观察到,4%Fe 2 O 3 / G-C3N4纳米复合材料中的3%的RGO分别表现出优异的光催化能力,比初始G-C3N4纳米蛋白朝向四环素和环丙沙星降解,近22倍和16倍。通过XRD,FTIR,SEM-EDX映射,HR-TEM,UV-VIS DRS等各种表征技术,研究了2D / 3D / 2D G-RGO / Fe2O3 / G-C3N4纳米复合材料和光催化机制之间的协同效应。 PL,XPS和EPR。此外,2D / 3D / 2D RGO / Fe2O3 / G-C3N4纳米复合材料表现出优异的可再循环性和稳定性,在环境修复中建立有希望的应用。该研究将为2D / 3D / 2D异质结纳米复合体系的广泛光催化性能提供有值得注意的平台,具有增强的电荷迁移和分离。

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