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Chemical free synthesis of graphene oxide in the preparation of reduced graphene oxide-zinc oxide nanocomposite with improved photocatalytic properties

机译:制备具有改善的光催化性能的还原型氧化石墨烯-氧化锌纳米复合材料的化学合成方法

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In the present investigation, the reduced graphene oxide zinc oxide (rGO-ZnO) was prepared by rapid microwave-assisted hydrothermal technique. The chemical free graphene oxide (GO), synthesized by Tang Lau technique, was used in the preparation of rGO-ZnO nanocomposite. The GO gets reduced to rGO during microwave irradiation and provides the necessary nucleation site for the ZnO nanorods to grow in [0 0 0 1] direction. These ZnO nanorods were completely wrapped with rGO sheets, confirmed by the synchrotron XRD and TEM techniques. The phases and cell parameters were calculated by Rietveld method. The prepared composite was used for the photodegradation of methyl orange (MO) dye from water under UV light. Investigation revealed that the incorporation of rGO into the ZnO increased the photodegradation ability of the bare ZnO. The performance of the composite is also compared with the rGO-ZnO nanocomposite, where rGO was prepared by Hummers method. rGO obtained from Tang Lau method formed stable and efficient composite with ZnO and exhibited higher activity compared to the composite, wherein rGO was prepared from conventional Hummer's method. Under UV light, the ZnO liberates photoelectrons which reacts with surface oxygen to form superoxide radicals (O-2) and (OH-) in the water medium. The rGO nanosheets could reduce the charge recombination during the reaction. The active species adsorbs the MO molecules and degrades into CO2, H2O and other byproducts. More than 3.5 times increase in the rate constant was observed for rGO-ZnO compared to the bare ZnO. (C) 2018 Elsevier B.V. All rights reserved.
机译:在本研究中,通过快速微波辅助水热技术制备了还原氧化石墨烯氧化锌(rGO-ZnO)。采用Tang Lau技术合成的无化学氧化石墨烯(GO)用于制备rGO-ZnO纳米复合材料。 GO在微波辐射过程中被还原为rGO,并为ZnO纳米棒在[0 0 0 1]方向上生长提供了必要的成核位点。这些ZnO纳米棒被rGO片完全包裹,通过同步加速器XRD和TEM技术证实。通过Rietveld方法计算相和细胞参数。制备的复合材料用于在紫外光下从水中光降解甲基橙(MO)染料。研究表明,将rGO掺入ZnO可以提高裸ZnO的光降解能力。还将复合材料的性能与rGO-ZnO纳米复合材料进行了比较,后者通过Hummers方法制备。与传统的悍马方法制得的rGO相比,由Tang Lau法制得的rGO与ZnO形成了稳定高效的复合材料,并具有更高的活性。在紫外线下,ZnO释放出光电子,该光电子与表面氧反应,在水介质中形成超氧自由基(O-2)和(OH-)。 rGO纳米片可以减少反应过程中的电荷重组。活性物质吸附MO分子并降解为CO2,H2O和其他副产物。与裸露的ZnO相比,rGO-ZnO的速率常数增加了3.5倍以上。 (C)2018 Elsevier B.V.保留所有权利。

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