Xu Leilei, Ao Yuwei, Guan Bin, Xiang Yun, Guan Jianguo
State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, International School of Materials Science and Engineering, Wuhan University of Technology, 122 Luoshi Road, Wuhan 430070, China.
Nanomaterials (Basel). 2019 Feb 15;9(2):273. doi: 10.3390/nano9020273.
Hierarchical nanostructures (HNs) are possibly endowed with novel properties due to their complex three-dimensional (3D) structures. Here, we provide a novel stepwise growth strategy of Coordination Complex Transformation-Assisted Growth for fabricating HNs. By using this, we prepare a new wurtzite ZnS HNs-hollow chestnut-like hierarchical microspheres (HCHMs), which are mesoporous hollow microspheres with single crystalline nanorods arrayed densely and radially from the centre. The HCHMs formation depends on the stepwise decomposition of the two Zn complexes ([Zn(en)(H₂O)] and [Zn(en)(NH₃)], natural number m < 3). As the reaction proceeds, [Zn] has been distinctly reduced due to the transformation from [Zn(en)(H₂O)] to [Zn(en)(NH₃)] with a high stability constant, leading to a low crystal growth rate to obtain single crystalline nanorods. Additionally, the generated bubbles (CO₂, NH₃) acting as a template can induce the generation of hollow structure. The as-prepared ZnS HCHMs show an enhanced photocatalytic hydrogen evolution activity due to the single crystalline wurtzite phase and the high surface area contributed by the hollow hierarchical structures, as well as the mesoporosity. The versatility of the coordination complex transformation-assisted growth strategy will open up new possibilities for fabricating HNs, especially for those transition metal ions with excellent complex capabilities.
由于其复杂的三维(3D)结构,分级纳米结构(HNs)可能具有新颖的特性。在此,我们提供了一种用于制备HNs的新型逐步生长策略——配位络合物转化辅助生长法。通过使用这种方法,我们制备了一种新型的纤锌矿ZnS HNs-中空栗子状分级微球(HCHMs),它是一种介孔中空微球,有从中心密集且呈放射状排列的单晶纳米棒。HCHMs的形成取决于两种锌络合物([Zn(en)(H₂O)]和[Zn(en)(NH₃)],自然数m<3)的逐步分解。随着反应的进行,由于从稳定性常数高的[Zn(en)(H₂O)]向[Zn(en)(NH₃)]的转变,[Zn]明显减少,导致晶体生长速率较低,从而获得单晶纳米棒。此外,产生的气泡(CO₂、NH₃)作为模板可诱导中空结构的产生。所制备的ZnS HCHMs由于单晶纤锌矿相、中空分级结构以及介孔性所贡献的高比表面积,表现出增强的光催化析氢活性。配位络合物转化辅助生长策略的多功能性将为制备HNs开辟新的可能性,特别是对于那些具有优异络合能力的过渡金属离子。