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首页> 外文期刊>Applied Catalysis, B. Environmental: An International Journal Devoted to Catalytic Science and Its Applications >Direct Z-scheme composite of CdS and oxygen-defected CdWO4: An efficient visible-light-driven photocatalyst for hydrogen evolution
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Direct Z-scheme composite of CdS and oxygen-defected CdWO4: An efficient visible-light-driven photocatalyst for hydrogen evolution

机译:CdS和氧偏转的CdWO4的直接Z方案复合物:一种有效的可见光驱动的光催化氢分解光催化剂

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摘要

Direct Z-scheme photocatalyst, which enables efficient charge separation and retains high redox ability, is promising material for visible-light-driven hydrogen evolution. Here we developed a one-step solvothermal method to fabricate direct Z-scheme CdS/CdWO4 composite via treating W18O49 with CH3CSNH2 and Cd(CH3COO)(2). By controlling the dosage of Cd(CH3COO)(2), CdS nanoparticles decorated CdWO4 nanowires (CS-2) is synthesized. UV-vis DRS and XPS spectra demonstrate that the CdWO4 possesses a large amount of oxygen vacancies, which help to form ohmic contact and broaden light absorption. Compared with CdS, CS-2 Exhibits 18 times higher visible-light H-2 evolution activity using lactic acid as sacrificial agent and shows 7.8-fold higher photocurrent density. Moreover, photoelectrochemical test manifests the efficient separation of the photo-induced charge carriers. Radical-trapping experiments along with in-situ Pt photodeposition further prove that the charge transfer and separation follows Z-scheme mechanism. This work highlights the critical role of defects in the formation of direct Z-scheme composite. (C) 2016 Elsevier B.V. All rights reserved.
机译:直接Z方案光催化剂可实现有效的电荷分离并保留高氧化还原能力,是可见光驱动的氢气释放的有前途的材料。在这里,我们开发了一种一步溶剂热法,通过用CH3CSNH2和Cd(CH3COO)(2)处理W18O49来制备直接Z方案CdS / CdWO4复合材料。通过控制Cd(CH3COO)(2)的剂量,合成了装饰有CdWO4纳米线(CS-2)的CdS纳米粒子。 UV-vis DRS和XPS光谱表明CdWO4具有大量的氧空位,有助于形成欧姆接触并扩大光吸收。与CdS相比,CS-2以乳酸为牺牲剂,其可见光H-2进化活性高18倍,光电流密度高7.8倍。而且,光电化学测试表明光诱导的载流子的有效分离。自由基俘获实验以及原位Pt光沉积进一步证明了电荷转移和分离遵循Z机理。这项工作突出了缺陷在直接Z方案复合材料形成中的关键作用。 (C)2016 Elsevier B.V.保留所有权利。

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