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首页> 外文期刊>Nanomaterials >Surface Decoration of ZnWO 4 Nanorods with Cu 2 O Nanoparticles to Build Heterostructure with Enhanced Photocatalysis
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Surface Decoration of ZnWO 4 Nanorods with Cu 2 O Nanoparticles to Build Heterostructure with Enhanced Photocatalysis

机译:Cu 2 O纳米粒子对ZnWO 4纳米棒的表面修饰,以增强光催化作用来构建异质结构

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The surface of ZnWO 4 nanorods was decorated with Cu 2 O nanoparticles (Cu 2 O/ZnWO 4 ) prepared through a precipitation method. The Cu 2 O nanoparticles were tightly deposited on the ZnWO 4 surface and had average diameters of 20 nm. The nanoparticles not only promoted the absorption and utilization of visible light but also facilitated the separation of photogenerated charge carriers. This brought an improvement of the photocatalytic activity. The 5 wt % Cu 2 O/ZnWO 4 photocatalyst displayed the highest degrade efficiency for methylene blue (MB) degradation under visible light, which was 7.8 and 2 times higher than pure ZnWO 4 and Cu 2 O, respectively. Meanwhile, the Cu 2 O/ZnWO 4 composite photocatalyst was able to go through phenol degradation under visible light. The results of photoluminescence (PL), photocurrent, and electrochemical impedance spectra (EIS) measurements were consistent and prove the rapid separation of charge, which originated from the match level structure and the close contact with the interface. The radical and hole trapping experiments were carried out to detect the main active substances in the photodegradation process. The holes and ·O 2 ? radicals were predicted to dominate the photocatalytic process. Based on the characterization analysis and experiment results, a possible photocatalytic mechanism for enhancing photocatalytic activity was proposed.
机译:ZnWO 4纳米棒的表面装饰有通过沉淀法制备的Cu 2 O纳米粒子(Cu 2 O / ZnWO 4)。 Cu 2 O纳米颗粒紧密地沉积在ZnWO 4表面上并且具有20nm的平均直径。纳米粒子不仅促进了可见光的吸收和利用,而且还促进了光生载流子的分离。这带来了光催化活性的改善。 5 wt%Cu 2 O / ZnWO 4光催化剂在可见光下显示出最高的亚甲基蓝(MB)降解效率,分别比纯ZnWO 4和Cu 2 O高7.8和2倍。同时,Cu 2 O / ZnWO 4复合光催化剂在可见光下能够经历苯酚降解。光致发光(PL),光电流和电化学阻抗谱(EIS)的测量结果是一致的,并证明了电荷的快速分离,这是由匹配能级结构和与界面的紧密接触引起的。进行了自由基和空穴俘获实验,以检测光降解过程中的主要活性物质。孔和·O 2?预测自由基将主导光催化过程。基于表征分析和实验结果,提出了可能的增强光催化活性的光催化机理。

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