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首页> 外文期刊>Journal of Colloid and Interface Science >A facile strategy for the synthesis of ferroferric oxide/titanium dioxide/molybdenum disulfide heterostructures as a magnetically separable photocatalyst under visible-light
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A facile strategy for the synthesis of ferroferric oxide/titanium dioxide/molybdenum disulfide heterostructures as a magnetically separable photocatalyst under visible-light

机译:在可见光下为磁性可分离的光催化剂合成铁氧化物/二氧化钛/钼异质结构的容易策略

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Semiconductor photocatalysts is a promising approach to combat both environmental pollution and global energy shortage despite the challenges of recycling and stability. In this paper, magnetic Fe3O4 particle is introduced in the system and Fe3O4/TiO2/MoS2 heterostructures can be formed in a facile strategy. The morphology and structure of Fe3O4/TiO2/MoS2 can be controlled by adjusting the hydrolysis rate of the titanium source. MoS2 is designed to fill in the mesoporous of TiO2 core, forming heterojunction on the surface and near-surface of TiO2 under solvothermal conditions. With respect to the decomposition of a rhodamine B (RhB) solution under visible light, the Fe3O4/TiO2/MoS2 heterostructures display highly photocatalytic activities in aqueous solutions, and they can be easily recovered to realize cyclic utilization by applying an external magnetic field. Thus, the effective magnetic recycle of the catalyst is achieved, and high visible light catalytic activity is ensured simultaneously. Since the current method is simple and flexible to create recyclable catalysts with high stability in this way, it could promote the practicability of semiconductor photocatalysts in water treatment, degradation of dye pollutants, and environmental cleaning. (C) 2018 Elsevier Inc. All rights reserved.
机译:尽管回收和稳定性挑战,但半导体光催化剂是对抗环境污染和全球能源短缺的有希望的方法。在本文中,在系统中引入磁Fe3O4颗粒,并且Fe3O4 / TiO2 / MOS2异质结构可以以容易的策略形成。通过调节钛源的水解速率,可以控制Fe3O4 / TiO2 / MOS2的形态和结构。 MOS2设计用于填充TiO2核心的中孔,在溶剂热条件下形成TiO 2的表面和近表面上的异质结。关于在可见光下的罗丹明B(RHB)溶液的分解,Fe3O4 / TiO 2 / MOS2异质结构在水溶液中显示出高度光催化活性,并且可以通过施加外部磁场来容易地回收它们以实现循环利用率。因此,实现了催化剂的有效磁性再循环,同时确保了高可见光催化活性。由于目前的方法简单且柔韧,以这种方式创造具有高稳定性的可回收催化剂,它可以促进半导体光催化剂在水处理,染料污染物的降解和环境清洁中的可行性。 (c)2018 Elsevier Inc.保留所有权利。

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