School of Materials Science and Engineering, Nanyang Technological University, 50 Nanyang Avenue, Singapore 639798.
Langmuir. 2010 Apr 6;26(7):4616-9. doi: 10.1021/la100345b.
A facile route for the generation of the dual patterns of metal oxide nanomaterials, for example, ZnO and CuO, has been developed by printing the oxide seeds through a combination of microcontact printing (microCP) and microfluidic (microF) techniques, followed by the simultaneous growth of the two metal oxide nanomaterials in a one-step solution reaction based on hydrothermal, seed-mediated selective growth. The obtained dual patterns of ZnO nanorods and CuO nanoneedles show a sharp boundary between them, indicating well-defined dual-pattern generation. Also, the simultaneous growth of metal oxide nanomaterials is highly material-selective for the specific seeds prepatterned on substrates, resulting in the selective growth of ZnO nanorods and CuO nanoneedles on the ZnO and CuO seeds, respectively. Moreover, the generation of high-quality dual patterns has been similarly realized on a flexible poly(ethylene terephthalate) (PET) wafer. This study demonstrates the well-controlled hydrothermal growth of different metal oxide nanomaterials in the same reaction solution on the preprinted oxide seeds on the target substrates. It opens up an avenue to develop multifunctional devices of different metal oxides with the combination of microCP and microF techniques.
已经开发出一种通过微接触印刷(microCP)和微流控(microF)技术组合打印氧化物种子的方法,来生成例如 ZnO 和 CuO 等金属氧化物纳米材料的双图案的简单途径,然后在基于水热的一步溶液反应中同时生长两种金属氧化物纳米材料,种子介导的选择性生长。所获得的 ZnO 纳米棒和 CuO 纳米针的双图案显示出它们之间的明显边界,表明具有良好定义的双图案生成。此外,金属氧化物纳米材料的同时生长对于基底上预先图案化的特定种子具有高度的材料选择性,导致 ZnO 纳米棒和 CuO 纳米针分别在 ZnO 和 CuO 种子上选择性生长。此外,在柔性聚对苯二甲酸乙二醇酯(PET)晶片上也同样实现了高质量双图案的生成。这项研究证明了在目标基底上预先印刷的氧化物种子上,在同一反应溶液中可以对不同的金属氧化物纳米材料进行良好控制的水热生长。它为结合 microCP 和 microF 技术开发具有不同金属氧化物的多功能器件开辟了道路。