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Mechanical force-assisted modulation of TiO2 nanowire-entangled hierarchical microstructures for photocatalysis application

机译:机械force-assisted二氧化钛的调制nanowire-entangled层次微观结构光催化应用

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摘要

Three-dimensional (3D) TiO2 hierarchical micromaterials assembled using high-aspect-ratio nano building blocks have exhibited many unique features of good structural stability, efficient mass transport/charge transfer properties and excellent light harvesting capability, which enable them to be successfully used for photocatalysis application. However, synthesis and structural control of the nano-/micro-materials pose serious challenges in materials design, such as requiring complex and time-consuming procedures, and harsh reaction conditions. Herein, we develop a simple wet-chemistry method combined with stirring procedure to construct new nanowire-assembled TiO2 submicron fibers with hierarchical structures. Results suggest that the mechanical force-driven stirring process increases the diffusion and surface reaction rate of intermediate hydrated titanate nanocrystal growth in the solution phase, leading to the generation of long tortuous nanowires and thereafter the formation of a new 3D nanowire-assembled hierarchical structure. The final 3D TiO2 nanowire-assembled micromaterials have a relatively large surface area of 184 m−2 g−1 with abundant hierarchical pores, which create an ideal micro-reactor for promoting the degradation of 2,4-dichlorophenol and Rhodamine B under UV light. The good photocatalytic performance is attributed to the unique structure of the TiO2 hierarchical nano-micromaterials, including a hierarchical pore structure and a dual-phase-induced rich interface. This work presents a facile and cost-effective approach that is potentially competitive for scaling-up the production of novel TiO2 nano-micromaterials with desired porous hierarchy for advanced application.
机译:三维(3 d)二氧化钛层次使用high-aspect-ratio micromaterials组装表现出许多独特的纳米构建块功能良好的结构稳定性、高效质量/电荷转移特性和运输优秀的光吸收能力,使他们能够被成功地用于光催化的应用程序。和结构的控制nano - / micro-materials构成严重的挑战材料设计,如需要复杂的和耗时的过程和严厉的反应条件。湿化学方法结合搅拌过程来构建新的nanowire-assembled二氧化钛亚微米纤维与层次结构。力搅拌过程增加了扩散和表面反应速率中间水化钛酸纳米晶体生长在解决方案阶段,导致生成漫长曲折的纳米线,之后组建一个新的3 d nanowire-assembled层次结构。nanowire-assembled micromaterials有相对较大的表面积184−2 g−1创建一个丰富的层次毛孔理想的微反应促进退化2、4-dichlorophenol和若丹明B紫外线下光。由于独特的结构的二氧化钛分层nano-micromaterials,包括层次结构和孔隙结构dual-phase-induced丰富的接口。提出了一种简单且经济有效的方法这是扩大潜在的竞争新型二氧化钛nano-micromaterials的生产先进的理想的多孔结构应用程序。

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