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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >High-efficiency separation and transfer of photo-induced charge carrier in graphene/TiO2 via heterostructure in magnetic field
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High-efficiency separation and transfer of photo-induced charge carrier in graphene/TiO2 via heterostructure in magnetic field

机译:磁场异质结构在石墨烯/ TiO2中光诱导电荷载体的高效分离和转移

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Providing a driving force is an effective approach to boost the separation of photo-induced charge carriers. Photoelectrode application is the most accepted route. However, it is difficult to realize the high-efficiency photocatalytic activity of granular photocatalysts in suspension by applying the electric field. In this work, on the basis of the Lorentz force-driven improved separation of photo-induced charge carriers in TiO2 nanobelts, further enhancement of the charge transfer was achieved through constructing a heterostructure of reduced graphene oxide (rGO)/TiO2 nanobelts (NBs) in a magnetic field. The photocatalytic efficiency of the rGO/TiO2 NB heterostructure improved by 34% compared with pure TiO2 NBs under the same magnetic field conditions. This new strategy combined the Lorentz force generated in a magnetic field and the built-in electric field of rGO-TiO2 NBs to improve photo-induced charge carrier separation and transfer. Furthermore, a wireless microelectric potential was generated in rGO based on the electromagnetic induction effect, which additionally improved the charge transfer in rGO. This work provides a new idea to improve the photocatalytic activity of granular photocatalysts. (C) 2021 Elsevier B.V. All rights reserved.
机译:提供驱动力是促进光致载流子分离的有效方法。光电极应用是最被接受的途径。然而,通过施加电场,很难实现悬浮颗粒光催化剂的高效光催化活性。在这项工作中,基于洛伦兹力驱动的TiO2纳米带中光致载流子的改进分离,通过在磁场中构建还原氧化石墨烯(rGO)/TiO2纳米带(NB)的异质结构,实现了电荷转移的进一步增强。在相同的磁场条件下,与纯TiO2 NBs相比,rGO/TiO2 NB异质结构的光催化效率提高了34%。这种新策略结合了磁场中产生的洛伦兹力和rGO-TiO2 NBs的内置电场,以改善光致载流子分离和转移。此外,基于电磁感应效应在rGO中产生无线微电势,这进一步改善了rGO中的电荷转移。这为提高颗粒光催化剂的光催化活性提供了新的思路。(c)2021爱思唯尔B.V.保留所有权利。

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