Wang Li, Chang Lixian, Zhao Bin, Yuan Zhongyong, Shao Gaosong, Zheng Wenjun
College of Chemistry, Nankai University, Tianjin 300071, P. R. China.
Inorg Chem. 2008 Mar 3;47(5):1443-52. doi: 10.1021/ic701094a. Epub 2008 Jan 18.
In this contribution, a series of shape-controllable ZnO nanostructures were synthesized in ionic liquids by a simpler, only one-step, low-temperature route, and characterized by XRD, XPS, TEM, HRTEM, SAED, EDXA, SEM, FTIR, surface area measurement and photoluminescence. We mainly investigate the effect of cations of ionic liquids on the shape of ZnO nanostructures and the forming mechanism of ZnO nanostructures in ionic liquids, as well as the luminescent property and photocatalytic activity for the degradation of Rhodamine B. The results show that the longer alkyl chain at position-1 of the imidazole ring of the ionic liquid will hinder the ZnO nanostructures from growing longer, and the hydrogen bonds may play a crucial role for the directional growth of the 1D nanocrystals. The photoluminescent study shows that the as-obtained ZnO nanostructures exhibit a unique green emission, indicating the existence of oxygen vacancies in the ZnO nanostructures. Importantly, the as-obtained ZnO nanostructures prepared in different ionic liquids show strong size/shape-dependent photocatalysis activity for degradation of Rhodamine B, and the well-dispersed homogeneous ZnO nanoparticles and nanowires display high photocatalytic activity. The investigation of photodegradation kinetics of Rhodamine B indicates that the photodegradation process obeys the rule of a first-order kinetic equation ln( C(0)/ C) = kt. This is the first systematic investigation on the relationship between the structure of ionic liquids and the morphology of ZnO nanostructures.
在本研究中,通过一种更简单的仅一步低温路线在离子液体中合成了一系列形状可控的ZnO纳米结构,并通过XRD、XPS、TEM、HRTEM、SAED、EDXA、SEM、FTIR、表面积测量和光致发光对其进行了表征。我们主要研究了离子液体阳离子对ZnO纳米结构形状的影响以及ZnO纳米结构在离子液体中的形成机理,以及其对罗丹明B降解的发光性能和光催化活性。结果表明,离子液体咪唑环1位上较长的烷基链会阻碍ZnO纳米结构的进一步生长,氢键可能对一维纳米晶体的定向生长起关键作用。光致发光研究表明,所制备的ZnO纳米结构呈现出独特的绿色发射,表明ZnO纳米结构中存在氧空位。重要的是,在不同离子液体中制备的所获得的ZnO纳米结构对罗丹明B的降解表现出强烈的尺寸/形状依赖性光催化活性,且分散良好的均匀ZnO纳米颗粒和纳米线具有高光催化活性。罗丹明B光降解动力学研究表明,光降解过程符合一级动力学方程ln(C(0)/C)=kt。这是首次对离子液体结构与ZnO纳米结构形态之间的关系进行系统研究。