IESL-FORTH, N. Plastira 100, 70013, Heraklion, Crete, Greece.
Department of Chemistry, University of Crete, 70013, Heraklion, Crete, Greece.
Sci Rep. 2017 May 18;7(1):2100. doi: 10.1038/s41598-017-02231-z.
The fabrication of nanostructures with controlled assembly and architecture is very important for the development of novel nanomaterial-based devices. We demonstrate that laser techniques coupled with low-temperature hydrothermal growth enable complex three-dimensional ZnO nanorod patterning on various types of substrates and geometries. This methodology is based on a procedure involving the 3D scaffold fabrication using Multi-Photon Lithography of a photosensitive material, followed by Zn seeded Aqueous Chemical Growth of ZnO nanorods. 3D, uniformly aligned ZnO nanorods are produced. The increase in active surface area, up to 4.4 times in the cases presented here, provides a dramatic increase in photocatalytic performance, while other applications are also proposed.
用可控组装和结构制造纳米结构对于新型纳米材料基器件的发展非常重要。我们证明,激光技术与低温水热生长相结合,可以在各种类型的衬底和几何形状上实现复杂的三维 ZnO 纳米棒图案化。该方法基于使用光敏材料的多光子光刻进行 3D 支架制造的程序,然后进行 Zn 种的 ZnO 纳米棒的水相化学生长。生成了 3D、均匀排列的 ZnO 纳米棒。在这里提出的情况下,活性表面积增加了 4.4 倍,这极大地提高了光催化性能,同时还提出了其他应用。