Yu Haijing, Huang Jing, Zhang Hua, Zhao Qingfei, Zhong Xinhua
Shanghai Key Laboratory of Functional Materials Chemistry, Institute of Applied Chemistry, East China University of Science and Technology, Shanghai 200237, People's Republic of China.
Nanotechnology. 2014 May 30;25(21):215702. doi: 10.1088/0957-4484/25/21/215702. Epub 2014 May 2.
Interfacial nanostructures in Bi2S3-TiO2 nanorod-nanoparticle heterostructures with a change of coupling mode have been engineered. The samples were characterized by x-ray diffraction, scanning electron microscopy, transmission electron microscopy, and ultraviolet-visual light absorption spectroscopy. By means of in situ growth of TiO2 nanoparticles on the surfaces of Bi2S3 nanorods in one pot, heterostructures with high-quality interfaces were obtained in which the {105} facet of anatase TiO2 selectively coupled with the {010} facet of orthorhombic Bi2S3 nanorods without any crystal defects, showing the epitaxial relationship of Bi2S3 {011} // TiO2 {101}. By means of a two-step method, TiO2 nanoparticles also could be grown on the {310} facet of the pre-prepared Bi2S3 nanorods to form heterostructures but with interfacial defects. Charge transfer in the interface-different heterostructures was evaluated by photodegradation of methyl orange under visible-light irradiation. The defect-free interfaces favored electron-hole separation and transfer, resulting in improved photocatalytic activity. The current structural characterization and interface engineering should be expanded to other heterostructures when studying the relationship between synthesis, interfacial structure, and photocatalytic or photovoltaic applications.
已设计出具有耦合模式变化的Bi2S3-TiO2纳米棒-纳米颗粒异质结构中的界面纳米结构。通过X射线衍射、扫描电子显微镜、透射电子显微镜和紫外-可见光吸收光谱对样品进行了表征。通过在一个反应釜中在Bi2S3纳米棒表面原位生长TiO2纳米颗粒,获得了具有高质量界面的异质结构,其中锐钛矿TiO2的{105}面与正交晶系Bi2S3纳米棒的{010}面选择性耦合,没有任何晶体缺陷,显示出Bi2S3 {011} // TiO2 {101}的外延关系。通过两步法,TiO2纳米颗粒也可以生长在预先制备的Bi2S3纳米棒的{310}面上以形成异质结构,但存在界面缺陷。通过在可见光照射下对甲基橙进行光降解来评估界面不同的异质结构中的电荷转移。无缺陷的界面有利于电子-空穴的分离和转移,从而提高了光催化活性。在研究合成、界面结构与光催化或光伏应用之间的关系时,当前的结构表征和界面工程应扩展到其他异质结构。