State Key Laboratory of Optoelectronic Materials and Technologies/MOE Key Laboratory of Bioinorganic and Synthetic Chemistry, School of Chemistry and Chemical Engineering, Sun Yat-Sen (Zhongshan) University, Guangzhou, P R China.
Nanoscale. 2010 Sep;2(9):1674-83. doi: 10.1039/c0nr00076k. Epub 2010 May 25.
Hierarchical tree-, mushroom- and cockscomb-like ZnO arrays with increasing branching order and complexities have been grown in situ on cheap zinc plates by a simple hydrothermal oxidation approach. Their morphology, crystal structure and orientation relationship are characterized by powder X-ray diffraction, scanning electron microscopy (SEM) and cross-sectional high-resolution transmission electron microscopy (HRTEM). The wurtzite ZnO arrays, growing mainly in the [0001] direction, show a special orientation relationship between the stem and the branch as well as a novel stem-branch boundary which might be attributed to the least mismatch between [symbol: see text] and (0002) lattice planes. The co-solvent ethylenediamine (en) was used to control the morphology and complexing of these complex ZnO nanostructures. Correspondingly, the physical properties of ZnO nanostructure assembly arrays were tuned and a stronger UV emission was observed with negligible emissions in the visible range, indicating the highly crystalline features of the complex ZnO micro-/nanostructured materials.
采用简单的水热氧化法,在廉价锌片上原位生长出具有递增分支阶数和复杂度的分层树形、蘑菇形和鸡冠形 ZnO 阵列。通过粉末 X 射线衍射、扫描电子显微镜(SEM)和横截面高分辨率透射电子显微镜(HRTEM)对其形貌、晶体结构和取向关系进行了表征。主要沿[0001]方向生长的纤锌矿 ZnO 阵列在茎和分支之间表现出特殊的取向关系以及新颖的茎-分支边界,这可能归因于[符号:见正文]和(0002)晶格平面之间的最小失配。共溶剂乙二胺(en)用于控制这些复杂 ZnO 纳米结构的形态和络合。相应地,对 ZnO 纳米结构组装阵列的物理性质进行了调整,并观察到了更强的紫外发射,而可见光范围内的发射可以忽略不计,这表明了复杂 ZnO 微/纳米结构材料的高结晶特性。