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Constructing the magnetic bifunctional graphene/titania nanosheet-based composite photocatalysts for enhanced visible-light photodegradation of MB and electrochemical ORR from polluted water

机译:构建磁性双功能石墨烯/二氧化钛纳米片基复合光催化剂以提高MB和可见光对废水中MB的可见光降解

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摘要

Photocatalysis is a promising strategy to address the global environmental and energy challenges. However, the studies on the application of the photocatalytically degraded dye-polluted water and the multi-purpose use of one type of catalyst have remained sparse. In this report, we try to demonstrate a concept of multiple and cyclic application of materials and resources in environmentally relevant catalyst reactions. A magnetic composite catalyst prepared from exfoliated titania nanosheets, graphene, the magnetic iron oxide nanoparticles, and a polyelectrolyte enabled such a cyclic application. The composite catalyst decomposed a methylene blue-polluted water under visible light, and then the catalyst was collected and removed from the treated water using a magnet. The photocatalytically treated water was then used to prepare the electrolyte in electrochemical reductive reactions and presented superior electrochemical performance compared with the dye-polluted water. The composite catalyst was once again used as the cathode catalyst in the electrochemical reaction. Each component in the composite catalyst was indispensable in its catalytic activity, but each component played different roles in the photochemical, magnetic recycling, and electrochemical processes. We expect the report inspire the study on the multi-functional catalyst and cyclic use of the catalytically cleaned water, which should contribute for the environmental and energy remedy from a novel perspective.
机译:光催化是解决全球环境和能源挑战的一种有前途的策略。然而,对光催化降解的染料污染的水的应用和对一种类型的催化剂的多用途的研究仍然很少。在本报告中,我们试图证明在环境相关的催化剂反应中材料和资源的多次循环应用的概念。由剥离的二氧化钛纳米片,石墨烯,磁性氧化铁纳米粒子和聚电解质制备的磁性复合催化剂能够进行这种循环应用。该复合催化剂在可见光下分解了亚甲基蓝污染的水,然后使用磁体将催化剂收集并从处理后的水中除去。然后将光催化处理过的水用于电化学还原反应中制备电解质,与染料污染的水相比,电化学性能更好。该复合催化剂在电化学反应中再次用作阴极催化剂。复合催化剂中的每种组分在其催化活性中都是必不可少的,但是每种组分在光化学,磁循环和电化学过程中发挥着不同的作用。我们希望该报告能激发人们对多功能催化剂和循环使用催化净化水的研究的兴趣,这将从新的角度为环境和能源的修复做出贡献。

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