Xiao Fang-Xing, Hung Sung-Fu, Tao Hua Bing, Miao Jianwei, Yang Hong Bin, Liu Bin
School of Chemical and Biomedical Engineering, Nanyang Technological University, 62 Nanyang Drive, Singapore 637459, Singapore.
Nanoscale. 2014 Dec 21;6(24):14950-61. doi: 10.1039/c4nr04886e. Epub 2014 Nov 3.
Hierarchically ordered ZnO nanorods (NRs) decorated nanoporous-layer-covered TiO2 nanotube array (ZnO NRs/NP-TNTAs) nanocomposites have been prepared by an efficient, two-step anodization route combined with an electrochemical deposition strategy, by which monodispersed one-dimensional (1D) ZnO NRs were uniformly grown on the framework of NP-TNTAs. The crystal phases, morphologies, optical properties, photocatalytic as well as photoelectrocatalytic performances of the well-defined ZnO NRs/NP-TNTAs heterostructures were systematically explored to clarify the structure-property correlation. It was found that the ZnO NRs/NP-TNTAs heterostructure exhibits significantly enhanced photocatalytic and photoelectrocatalytic performances, along with favorable photostability toward degradation of organic pollutants under UV light irradiation, as compared to the single component counterparts. The remarkably enhanced photoactivity of ZnO NRs/NP-TNTAs heterostructure is ascribed to the intimate interfacial integration between ZnO NRs and NP-TNTAs substrate imparted by the unique spatially branched hierarchical structure, thereby contributing to the efficient transfer and separation of photogenerated electron-hole charge carriers. Moreover, the specific active species during the photocatalytic process was unambiguously determined and photocatalytic mechanism was tentatively presented. It is anticipated that our work could provide new insights for the construction of various hierarchical 1D-1D hybrid nanocomposites for extensive photocatalytic applications.
通过一种高效的两步阳极氧化法与电化学沉积策略相结合,制备了具有分层有序结构的氧化锌纳米棒(NRs)修饰的纳米多孔层覆盖的二氧化钛纳米管阵列(ZnO NRs/NP-TNTAs)纳米复合材料,通过该方法,单分散的一维(1D)ZnO NRs在NP-TNTAs的框架上均匀生长。系统地研究了定义明确的ZnO NRs/NP-TNTAs异质结构的晶相、形貌、光学性质、光催化以及光电催化性能,以阐明结构-性能的相关性。结果发现,与单一组分的对应物相比,ZnO NRs/NP-TNTAs异质结构在紫外光照射下对有机污染物的降解表现出显著增强的光催化和光电催化性能,以及良好的光稳定性。ZnO NRs/NP-TNTAs异质结构显著增强的光活性归因于独特的空间分支分层结构赋予的ZnO NRs与NP-TNTAs基底之间紧密的界面整合,从而有助于光生电子-空穴电荷载流子的有效转移和分离。此外,明确确定了光催化过程中的特定活性物种,并初步提出了光催化机理。预计我们的工作可为构建用于广泛光催化应用的各种分层1D-1D杂化纳米复合材料提供新的见解。