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ZnS quantum dot intercalated layered double hydroxide semiconductors for solar water splitting and organic pollutant degradation

机译:用于太阳能分裂和有机污染物降解的ZnS量子点插入层状双氢氧化物半导体

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摘要

Heterostructured nanocomposites consisting of (MZnAl)-Zn-II-layered double hydroxide/ZnS quantum dots (M-II = Co or Mn) are constructed to utilize the unique properties of the wide band gap ZnS quantum dots (QDs) and layered double hydroxides (LDHs) for visible light driven photocatalytic applications. The nanocomposites were synthesized via the in situ growth of oppositely charged 2D LDHs in the presence of negatively charged ZnS QDs. The partial intercalating of ZnS QDs in the interlayer space of the LDHs is evidenced by powder X-ray diffraction results. In comparison with ZnS QDs and pristine LDHs, the prepared CoZnAl-LDH/ZnS and MnZnAl-LDH/ZnS heterostructures show surprisingly enhanced visible light harvesting ability with an expansion of the ligand to metal charge transfer absorption edge to visible wavelengths. The obtained results imply effective electronic coupling between ZnS QDs and LDHs. The charge carrier recombination is largely suppressed, as indicated by the photoluminescence and electrochemical impedance spectroscopy results. From the Tauc and Mott-Schottky plots, the band structures of the synthesized heterostructures were determined. The resulting heterostructures reveal promising activity for visible light photocatalytic oxygen evolution via water splitting and the degradation of Acid Red 14, as a model organic pollutant, and significantly enhanced photostability, much superior to pristine LDHs and ZnS QDs.
机译:由(MZNAL)-ZN-II层双氢氧化物/ ZnS量子点(M-II = CO或Mn)组成的异质结构纳米复合材料以利用宽带隙ZnS量子点(QDS)和层状双氢氧化物的独特性质(LDHs)用于可见光驱动的光催化应用。在带负电荷的ZnS QDS存在下,通过原位增长的纳米复合材料通过相对的电荷2DLDH的原位生长合成。通过粉末X射线衍射结果证明了LDH的中间间空间中的ZnS QDS的部分嵌入。与ZnS QD和原始LDH相比,制备的Coznal -LDH / ZnS和MNZNAL-LDH / ZnS异质结构表现出令人惊讶地增强的可见光收集能力,其膨胀与可见波长的金属电荷转移吸收边缘。所得结果意味着ZnS QD和LDH之间有效的电子耦合。如光致发光和电化学阻抗光谱结果所示,电荷载体重组大大抑制。从大学和Mott-肖特基图中,测定合成异质结构的带状结构。所得异质结构揭示了通过水分裂和酸红14的降解的可见光光催化氧量的有希望的活性,作为模型有机污染物,显着提高了光稳定性,优于原始LDH和ZnS QD。

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