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Ag2S-Sensitized NiO–ZnO Heterostructureswith Enhanced Visible Light Photocatalytic Activity and Acetone SensingProperty

机译:Ag2S敏化的NiO–ZnO异质结构具有增强的可见光光催化活性和丙酮感测属性

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摘要

Visible light-driven Ag2S-grafted NiO–ZnO ternary nanocomposites are synthesized using a facile and cost-effective homogeneous precipitation method. The structural, morphological, and optical properties were extensively studied, confirming the formation of ternary nanocomposites. The surface area of the synthesized nanocomposites was calculated by electrochemical double-layer capacitance (Cdl). Ternary Ag2S/NiO–ZnO nanocomposites showed excellent visible light photocatalytic property which increases further with the concentration of Ag2S. The maximum photocatalytic activity was shown by 8% Ag2S/NiO–ZnO with a RhB degradation efficiency of 95%. Hydroxyl and superoxide radicals were found to be dominant species for photodegradation of RhB, confirmed by scavenging experiments. It is noteworthy that the recycling experiments demonstrated high stability and recyclable nature of the photocatalyst. Moreover, the electrochemical results indicated that the prepared nanocomposite exhibits remarkable activity toward detection of acetone. The fabricated nanocomposite sensor showed high sensitivity (4.0764 μAmmol L–1 cm–2) and a lower detectionlimit (0.06 mmol L–1) for the detection of acetone.The enhanced photocatalytic and the sensing property of Ag2S/NiO–ZnO can be attributed to the synergistic effects ofstrong visible light absorption, excellent charge separation, andremarkable surface properties.
机译:可见光驱动的Ag2S接枝的NiO-ZnO三元纳米复合材料是使用一种简便且经济高效的均相沉淀法合成的。对结构,形态和光学性质进行了广泛的研究,证实了三元纳米复合材料的形成。合成的纳米复合材料的表面积通过电化学双层电容(Cdl)计算。三元Ag2S / NiO-ZnO纳米复合材料显示出优异的可见光光催化性能,并随着Ag2S的浓度进一步增加。 8%的Ag2S / NiO-ZnO表现出最大的光催化活性,RhB的降解效率为95%。清除实验证实,羟基和超氧化物自由基是RhB光降解的主要物质。值得注意的是,回收实验证明了光催化剂的高稳定性和可回收性。此外,电化学结果表明,所制备的纳米复合材料对丙酮的检测显示出显着的活性。制成的纳米复合传感器显示出高灵敏度(4.0764μAmmol L –1 cm –2 )和较低的检测率限(0.06 mmol L –1 )用于检测丙酮。Ag2S / NiO-ZnO的增强的光催化性能和传感特性可以归因于强大的可见光吸收能力,出色的电荷分离能力以及出色的表面性能。

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