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Visible light driven LaFeO3 nano sphere/RGO composite-photocatalysts for efficient water decomposition reaction

机译:可见光驱动LafeO3纳米球/ Rgo复合 - 光催化剂,用于高效水分分解反应

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RGO loaded on LaFeO3 nano sphere (GLFO) has been designed with greater stability in order to promote the photocatalytic activity towards water splitting by tuning the optical band gap of LFO and reducing the e(-) and h(+) recombination process. To alleviate the charge recombination, an effective strategy is to employ reduced graphene oxide (RGO) as a charge sink, separator and transporter. Gel combustion method has been adopted to prepare LFO nano sphere and through ultrasonication LFO spheres was fabricated on RGO surface. The synthesized nano structured materials are characterized by powder X-ray diffraction( PXD), UV-vis diffuse reflectance spectra (UV-vis DRS), transmission electron microscopy (TEM/HRTEM), X-ray photoelectron spectroscopy (XPS) and photoluminescence (PL) spectroscopy. UV-vis DRS data revealed that the nanocomposites are visible light absorbing semiconductors with band gap ranging from similar to 2.1-1.96 eV. When tested the photocatalyst towards hydrogen production under visible light, the rate of GLFO increases more than two fold than neat LFO. So as a case study, the GLFO photocatalyst can contribute a remarkable outcome in the photocatalytic field. Formation mechanism, structural, optical and electronic properties of LaFeO3 nanosphere/RGO composite is discussed and correlated with photocatalyic activity. (C) 2017 Elsevier B.V. All rights reserved.
机译:装载在Lafeo3纳米球体(GLFO)上的Rgo设计具有更大的稳定性,以通过调整LFO的光学带隙并降低E( - )和H(+)重组过程来促进光催化活动。为了缓解电荷重组,有效的策略是使用将氧化石墨烯(RGO)的氧化物氧化物(Rgo)作为电荷水槽,分离器和转运物。采用凝胶燃烧方法制备LFO纳米球,通过超声波,LFO球体在RGO表面上制造。合成的纳米结构材料的特征在于粉末X射线衍射(PXD),UV-Vis弥射反射谱(UV-VIS DRS),透射电子显微镜(TEM / HRTEM),X射线光电子谱(XPS)和光致发光( PL)光谱学。 UV-VIS DRS数据显示,纳米复合材料是可见光吸收半导体,带隙的范围类似于2.1-1.96eV。当在可见光下测试光催化剂朝向氢气产生时,GLFO的速率比整齐的LFO增加超过两倍。因此,作为一个案例研究,Glfo光催化剂可以在光催化领域中产生显着的结果。讨论了Lafeo3纳米/ rgo复合材料的形成机理,结构,光学和电子性质,与光催化活性相关。 (c)2017 Elsevier B.v.保留所有权利。

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