Graduate School of Chemical Sciences and Engineering, Hokkaido University, Kita 13, Nishi 8, Kita-Ku, Sapporo 060-8628, Japan.
Research Institute for Electronic Science, Hokkaido University, Kita 21, Nishi 10, Kita-Ku, Sapporo 001-0021, Japan.
Langmuir. 2020 Apr 7;36(13):3590-3599. doi: 10.1021/acs.langmuir.9b03835. Epub 2020 Feb 23.
The development of a strategy for the assembly of nanoscale building blocks, in particular, anisotropic nanoparticles, into desired structures is important for the construction of functional materials and devices. However, control over the orientation of rod-shaped nanoparticles on a substrate for integration into solid-state devices remains challenging. Here, we report a strategy for the fabrication of finely aligned gold nanorod (GNR) arrays using polymer (DNA) brushes as a nanoscale template. The gold nanorods modified with cationic surface ligands were electrostatically adsorbed onto the DNA brush substrates under various conditions. The orientational behavior of the GNRs was examined by spectral analyses and transmission electron microtomography (TEMT). As a result, we found several important factors, such as moderate interaction between GNRs and polymers and polymer densities on the substrate, related to the vertical alignment of GNRs on the substrates. We also developed a purification method to remove the undesired adsorption of GNRs onto the arrays. Finally, we have succeeded in the fabrication of extensive vertical GNR arrays of high quality via the easy bottom-up process.
开发一种将纳米级构建块(特别是各向异性纳米粒子)组装成所需结构的策略对于构建功能材料和器件非常重要。然而,控制棒状纳米粒子在基板上的取向以集成到固态器件中仍然具有挑战性。在这里,我们报告了一种使用聚合物(DNA)刷作为纳米级模板来制造精细排列的金纳米棒(GNR)阵列的策略。用阳离子表面配体修饰的金纳米棒在各种条件下通过静电吸附到 DNA 刷基底上。通过光谱分析和透射电子断层扫描(TEMT)检查了 GNR 的取向行为。结果,我们发现了几个重要因素,例如 GNR 与聚合物之间的适度相互作用以及基底上聚合物的密度,这些因素与 GNR 在基底上的垂直排列有关。我们还开发了一种纯化方法来去除不需要的 GNR 吸附到阵列上。最后,我们通过简单的自下而上的过程成功地制造了高质量的广泛垂直 GNR 阵列。