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TiO2 纳米带的结构、合成及应用。

Structure, synthesis, and applications of TiO2 nanobelts.

机构信息

State Key Laboratory of Crystal Materials, Shandong University, Jinan, 250100, P. R. China; Beijing Institute of Nanoenergy and Nanosystems, Chinese Academy of Science, Beijing, 100083, P. R. China.

出版信息

Adv Mater. 2015 Apr 24;27(16):2557-82. doi: 10.1002/adma.201405589. Epub 2015 Mar 19.

Abstract

TiO2 semiconductor nanobelts have unique structural and functional properties, which lead to great potential in many fields, including photovoltaics, photocatalysis, energy storage, gas sensors, biosensors, and even biomaterials. A review of synthetic methods, properties, surface modification, and applications of TiO2 nanobelts is presented here. The structural features and basic properties of TiO2 nanobelts are systematically discussed, with the many applications of TiO2 nanobelts in the fields of photocatalysis, solar cells, gas sensors, biosensors, and lithium-ion batteries then introduced. Research efforts that aim to overcome the intrinsic drawbacks of TiO2 nanobelts are also highlighted. These efforts are focused on the rational design and modification of TiO2 nanobelts by doping with heteroatoms and/or forming surface heterostructures, to improve their desirable properties. Subsequently, the various types of surface heterostructures obtained by coupling TiO2 nanobelts with metal and metal oxide nanoparticles, chalcogenides, and conducting polymers are described. Further, the charge separation and electron transfer at the interfaces of these heterostructures are also discussed. These properties are related to improved sensitivity and selectivity for specific gases and biomolecules, as well as enhanced UV and visible light photocatalytic properties. The progress in developments of near-infrared-active photocatalysts based on TiO2 nanobelts is also highlighted. Finally, an outline of important directions of future research into the synthesis, modification, and applications of this unique material is given.

摘要

TiO2 半导体纳米带具有独特的结构和功能特性,在光伏、光催化、储能、气体传感器、生物传感器,甚至生物材料等领域具有巨大的应用潜力。本文综述了 TiO2 纳米带的合成方法、性能、表面改性和应用。系统讨论了 TiO2 纳米带的结构特征和基本性质,介绍了 TiO2 纳米带在光催化、太阳能电池、气体传感器、生物传感器和锂离子电池等领域的许多应用。还强调了旨在克服 TiO2 纳米带固有缺陷的研究工作。这些工作集中在通过掺杂杂原子和/或形成表面异质结构来合理设计和修饰 TiO2 纳米带,以改善其理想特性。随后,描述了通过将 TiO2 纳米带与金属和金属氧化物纳米粒子、硫属元素化合物和导电聚合物耦合获得的各种类型的表面异质结构。此外,还讨论了这些异质结构界面处的电荷分离和电子转移。这些性质与特定气体和生物分子的灵敏度和选择性的提高以及紫外和可见光光催化性能的提高有关。还强调了基于 TiO2 纳米带的近红外活性光催化剂的发展进展。最后,概述了这种独特材料的合成、修饰和应用的未来研究的重要方向。

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