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g-C3N4-Mediated Synthesis of Cu2O To Obtain Porous Composites with Improved Visible Light Photocatalytic Degradation of Organic Dyes

机译:G-C3N4介导的Cu 2 O合成,得到多孔复合材料,具有改进的有机染料的可见光光催化降解

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A highly porous architecture of graphitic carbon nitride g-C3N4/Cu2O nanocomposite in the form of cubes with a side length of ≈ 1 μm, large pores of 1.5 nm, and a high surface area of 9.12 m2/g was realized by an optimized in situ synthesis protocol. The synthesis protocol involves dispersing a suitable “Cu” precursor into a highly exfoliated g-C3N4 suspension and initiating the reaction for the formation of Cu2O. Systematic optimization of the conditions and compositions resulted in a highly crystalline g-C3N4/Cu2O composite. In the absence of g-C3N4, the Cu2O particles assemble into cubes with a size of around 300 nm and are devoid of pores. Detailed structural and morphological evaluations by powder X-ray diffraction and field emission scanning electron microscopy revealed the presence of highly exfoliated g-C3N4, which is responsible for the formation of the porous architecture in the cube like assembly of the composite. The micrographs clearly reveal the porous structure of the composite that retains the cubic shape of Cu2O, and the energy-dispersive spectroscopy supports the presence of g-C3N4 within the cubic morphology. Among the different g-C3N4/Cu2O compositions, CN/Cu-5 with 10% of g-C3N4, which is also the optimum composition resulting in a porous cubic morphology, shows the best visible light photocatalytic performance. This has been supported by the ultraviolet diffuse reflectance spectroscopy (UV-DRS) studies of the composite which shows a band gap of around 2.05 eV. The improved photocatalytic performance of the composite could be attributed to the highly porous morphology along with the suitable optical band gap in the visible region of the solar spectrum. The optimized composite, CN/Cu-5, demonstrates a visible light degradation of 81% for Methylene Blue (MB) and 85.3% for Rhodamine-B (RhB) in 120 min. The decrease in the catalyst performance even after three repeated cycles is less than 5% for both MB and RhB dyes. The rate constant for MB and RhB degradation is six and eight times higher with CN/Cu-5 when compared with the pure Cu2O catalyst. To validate our claim that the dye degradation is not merely decolorization, liquid chromatography–mass spectroscopy studies were carried out, and the end products of the degraded dyes were identified.
机译:高度多孔结构的石墨氮化物G-C3N4 / Cu 2 O纳米复合材料的侧面长度为≈1μm,大孔1.5nm,并且通过优化实现了9.12m 2 / g的高表面积原位合成协议。合成方案涉及将合适的“Cu”前体分散到高剥离的G-C3N4悬浮液中并引发反应形成Cu 2 O。系统优化的条件和组合物导致高度结晶的G-C3N4 / CU 2O复合材料。在没有G-C3N4的情况下,Cu2O颗粒组装成尺寸约为300nm的立方体并且缺乏孔。粉末X射线衍射和场发射扫描电子显微镜的详细结构和形态学评价显示出高度剥离的G-C3N4的存在,该G-C3N4负责在多孔结构中形成多孔结构,如复合材料的组装。显微照片清楚地揭示了保持Cu2O的立方形状的复合材料的多孔结构,并且能量分散光谱支持在立方体形态内的G-C3N4的存在。在不同的G-C3N4 / CU 2 O组合物中,具有10%G-C3N4的CN / Cu-5,也是最佳组合物,其导致多孔立方体形态,显示出最佳的可见光光催化性能。这已由复合材料的紫外弥射反射光谱(UV-DRS)研究支持,其显示围绕2.05eV的带隙。复合材料的改善的光催化性能可以归因于高度多孔的形态以及太阳光谱的可见区域中的合适光带隙。优化的复合材料CN / Cu-5证明了亚甲基蓝(MB)的可见光降解为81%,在120分钟内为Rhodamine-B(RHB)的85.3%。对于Mb和RHB染料,三次重复循环甚至在三次重复循环之后,催化剂性能的降低也小于5%。与纯Cu2O催化剂相比,Mb和RHB降解的速率常数与CN / Cu-5更高的六倍和八倍。为了验证我们的染料降解不仅仅是脱色,进行液相色谱 - 质谱研究,并鉴定了降解染料的最终产物。

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