论文标题
通过热水和冷却冷却来增强ZnO纳米生成器性能的策略
Strategies to Enhance ZnO Nanogenerator Performance via Thermal-Annealing and Cryo-Cooling
论文作者
论文摘要
基于垂直生长的晶氧化锌纳米线(ZnO-NWS),已经使用低成本且可伸缩的水热方法上的金色涂层硅底物制造了压电电容电容型纳米发育仪(NG),该方法既用作种子层和导电底部电极。形态学和结构特征表明,所获得的ZnO NW是密度,均匀分布,垂直排列良好并具有良好的晶体质量。压电NG由ZnO-NWS组成,该ZnO-NWS在金色涂层的硅底物,Parylene-C基质,钛/铝顶电极和聚(Dimethylsiloxane)(PDMS)(PDMS)的包裹层上生长。为了增强NG性能,这是本研究的主要目标,应用了两种截然不同的生长后处理,即在环境空气中进行热退火和沉浸在液氮中的冷冻冷却,并研究了其效果。提出了通过高质量的NWS增长和随后的增长后处理来实现NG的高性能。与热冷却的最佳持续时间相比,已经观察到了NG的出色全球性能,与热退火相比,这表明了工作的简单性和新颖性。拟议的策略凸显了生长治疗方法在制造高性能功能NG中的作用,将其纳入未来的智能对象中。
Piezoelectric capacitive NanoGenerators (NG) based on vertically grown crystalline zinc oxide nanowires (ZnO-NWs) have been fabricated using a low-cost and scalable hydrothermal method on gold-coated silicon substrates, which served as both a seed layer and a conductive bottom electrode. Morphological and structural characterizations demonstrate that the obtained ZnO NWs are dense, uniformly distributed, vertically well aligned and exhibit good crystal quality. The piezoelectric NG consists of ZnO-NWs grown on a gold-coated silicon substrate, parylene-C matrix, titanium/aluminium top electrode and poly(dimethylsiloxane) (PDMS) encapsulating layer. In order to enhance the NG performances, which is the main goal of this study, two distinctly different post-growth treatments, namely thermal annealing in ambient air and cryo-cooling by immersion in liquid nitrogen, are applied and their effect studied. Achieving the high performance of NG via the combination of high-quality NWs growth and subsequent post-growth treatment is presented. Superior global performance of NG has been observed with a post-treatment of cryo-cooling for an optimum duration compared to the thermal annealing signifies the simplicity and novelty of the work. The proposed strategies highlight the role of post-growth treatments towards the fabrication of high-performance functional NG to be incorporated into future smart objects.