R. Ofek Almog , E. Shashar , K. Kadan-Jamal , Y. Shacham-Diamand
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引用次数: 0
Abstract
Metal oxide nanostructures decorated with noble metal nanoparticles are hybrid structures with a special interface that combines the unique properties of those two materials. Noble metal nanoparticles exhibit useful catalytic properties, and they can be functionalized with biomaterials. In this work, we use gold nanoparticles that can be functionalized using thiolated molecules bound to the metal surface. Zinc oxide nano-walls (NWs) are a high surface-to-volume ratio wide-bandgap semiconductor nanostructures that, due to their biocompatibility and non-toxicity characteristics, can be used in biosensing applications that involve contact with tissues and cells. ZnO nano-walls can be deposited from aqueous solutions at low temperatures, both on rigid and flexible substrates, using a simple and low-cost process that can be upscaled to high-volume production. In this work, we study the nucleation and growth of the ZnO nano-walls and we describe the gold nanoparticles decoration at three different schemes of surface functionalization. Among these schemes, we found that the process where ZnO nano-walls were deposited on polyimide substrates followed by activation using a self-assembled monolayer, resulted in a decoration with uniform size and distribution of gold nano-particles. That process was studied as a function of the growth temperature, solution concentration, and time. The morphology of the ZnO nano-walls was studied by Scanning Electron microscope imaging and the crystal structure was studied by X-ray diffraction.
用贵金属纳米颗粒装饰的金属氧化物纳米结构是一种混合结构,其特殊的界面结合了这两种材料的独特性能。贵金属纳米颗粒具有有用的催化特性,而且可以与生物材料功能化。在这项工作中,我们使用的金纳米粒子可通过与金属表面结合的硫醇分子实现功能化。氧化锌纳米壁(NWs)是一种高表面体积比的宽带隙半导体纳米结构,由于其生物相容性和无毒性特点,可用于涉及与组织和细胞接触的生物传感应用。氧化锌纳米壁可在低温下从水溶液中沉积在刚性和柔性基底上,其工艺简单、成本低廉,并可升级至大批量生产。在这项工作中,我们研究了氧化锌纳米壁的成核和生长,并介绍了三种不同表面功能化方案下的金纳米粒子装饰。在这些方案中,我们发现,将氧化锌纳米壁沉积在聚酰亚胺基底上,然后使用自组装单层进行活化的过程,能产生尺寸和分布均匀的金纳米粒子装饰。研究了这一过程与生长温度、溶液浓度和时间的函数关系。通过扫描电子显微镜成像研究了氧化锌纳米壁的形态,并通过 X 射线衍射研究了晶体结构。
期刊介绍:
Thin Solid Films is an international journal which serves scientists and engineers working in the fields of thin-film synthesis, characterization, and applications. The field of thin films, which can be defined as the confluence of materials science, surface science, and applied physics, has become an identifiable unified discipline of scientific endeavor.