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Bi4TaO8Cl/Graphene nanocomposite for photocatalytic water splitting

机译:Bi4TaO8Cl /石墨烯纳米复合物用于光催化水分裂

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摘要

Sillen-Aurivillius structures like Bi4NbO8Cl, Bi4TaO8Cl, and Bi4TaO8Br have been expected as efficient visible light active photocatalysts thanks to their narrow band gaps less than 2.5 eV and suitable negative conduction band potential for hydrogen production reaction, 0.0 V vs NHE. However, despite their excellent potential the photocatalytic hydrogen generation efficiency of them under visible light has remained low. The low activity is usually attributed to the shallow defect levels near the conduction band, causing fast recombinations of photoexcited electrons and holes. In this study, a nanocomposite of Bi4TaO8Cl and graphene is proposed for overcoming this issue. The excellent electron conductivity and abundant delocalized electrons from the conjugated sp(2)-bonded carbon networks in graphene can facilitate the transfer of electrons from Bi4TaO8Cl conduction band and increase the photocatalytic efficiency. Bi4TaO8Cl/graphene nanocomposite was successfully prepared by a hydrothermal method, and photocatalytic activity enhanced both under UV and visible light. (C) 2019 The Society of Powder Technology Japan. Published by Elsevier B.V. and The Society of Powder Technology Japan. All rights reserved.
机译:由于其窄频段间隙小于2.5eV和氢气产生反应的合适负导却带电位,因此预计将预期Sillen-aurivillius和Bi4TaO8BR等Sillen-Aurivillius结构。然而,尽管它们具有优异的潜在潜在的光催化在可见光下的光催化氢气产生效率仍然低。低活动通常归因于导通带附近的浅缺陷水平,导致光屏蔽的电子和孔的快速重组。在该研究中,提出了Bi4TaO8Cl和石墨烯的纳米复合物用于克服这个问题。来自缀合的SP(2)石墨烯的优异的电子电导率和丰富的分层电子,石墨烯中的碳网络可以促进来自Bi4TaO8Cl导通带的电子传递并增加光催化效率。通过水热法成功制备Bi4TaO8Cl /石墨烯纳米复合物,并且光催化活性在UV和可见光下增强。 (c)2019年日本粉末技术学会。由elsevier b.v发表。和日本粉末科技会。版权所有。

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