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Sunlight-Induced photochemical synthesis of Au nanodots on α-Fe2O3@Reduced graphene oxide nanocomposite and their enhanced heterogeneous catalytic properties

机译:α-Fe2O3@还原的氧化石墨烯纳米复合材料的日光诱导金纳米光化学合成及其增强的多相催化性能

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摘要

In this present study, we report the synthesis of Au nanodots on α-Fe2O3@reduced graphene oxide (RGO) based hetero-photocatalytic nanohybrids through a chlorophyll mediated photochemical synthesis. In this process, chlorophyll induces a rapid reduction (30 min) of Au3+ ions to Au° metallic nanodots on α-Fe2O3@RGO surface under sunlight irradiation. The nucleation growth process, photo-induced electron-transfer mechanism and physico-chemical properties of the Au@α-Fe2O3@RGO ternary nanocomposites were systematically studied with various analytical techniques. This novel photochemical synthesis process is a cost-effective, convenient, surfactant-less, and scalable method. Moreover, the prepared ternary nanocomposites enhanced catalytic activity as compared to pure α-Fe2O3 and α-Fe2O3@RGO. The advantages and synergistic effect of Au@α-Fe2O3@RGO exhibit, (i) a broader range of visible-light absorption due to visible light band gap of α-Fe2O3, (ii) lower recombination possibility of photo-generated electrons and holes due to effect of Au and (iii) faster electron transfer due to higher conductivity of RGO. Therefore, the prepared Au@α-Fe2O3@RGO hetero-photocatalytic nanohybrids exhibited a remarkable photocatalytic activity, thus enabling potential active hetero-photocatalyst for industrial and environmental applications.
机译:在本研究中,我们报道了通过叶绿素介导的光化学合成,在基于α-Fe2O3@还原的氧化石墨烯(RGO)的杂化光催化纳米杂化物上合成金纳米点。在此过程中,叶绿素在阳光照射下诱导α-Fe2O3@ RGO表面上的Au 3 + 离子快速还原(30 min)为Au°金属纳米点。用各种分析技术系统地研究了Au @α-Fe2O3@ RGO三元纳米复合材料的成核生长过程,光诱导电子转移机理和理化性质。这种新颖的光化学合成工艺是一种经济高效,方便,无表面活性剂且可扩展的方法。此外,与纯α-Fe2O3和α-Fe2O3@ RGO相比,制备的三元纳米复合材料增强了催化活性。 Au @α-Fe2O3@ RGO的优点和协同作用表现出:(i)由于α-Fe2O3的可见光带隙,可见光的吸收范围更广;(ii)光生电子和空穴的复合可能性更低由于金的作用,以及(iii)由于RGO的电导率较高,因此电子转移速度更快。因此,制备的Au @α-Fe2O3@ RGO杂化光催化纳米杂化材料表现出显着的光催化活性,从而为工业和环境应用提供了潜在的活性杂化光催化剂。

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