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在石墨烯上控制半导体纳米线、纳米墙和杂化纳米结构的生长,用于压电纳米发电机。

Controlled growth of semiconducting nanowire, nanowall, and hybrid nanostructures on graphene for piezoelectric nanogenerators.

机构信息

School of Advanced Materials Science and Engineering, Sungkyunkwan University, Suwon 440-746, Republic of Korea.

出版信息

ACS Nano. 2011 May 24;5(5):4197-204. doi: 10.1021/nn200942s. Epub 2011 Apr 20.

Abstract

Precise control of morphologies of one- or two-dimensional nanostructures during growth has not been easy, usually degrading device performance and therefore limiting applications to various advanced nanoscale electronics and optoelectronics. Graphene could be a platform to serve as a substrate for both morphology control and direct use of electrodes due to its ideal monolayer flatness with π electrons. Here, we report that, by using graphene directly as a substrate, vertically well-aligned zinc oxide (ZnO) nanowires and nanowalls were obtained systematically by controlling gold (Au) catalyst thickness and growth time without inflicting significant thermal damage on the graphene layer during thermal chemical vapor deposition of ZnO at high temperature of about 900 °C. We clarify Au nanoparticle positions at graphene-ZnO heterojunctions that are very important in realizing advanced nanoscale electronic and optoelectronic applications of such nanostructures. Further, we demonstrate a piezoelectric nanogenerator that was fabricated from the vertically aligned nanowire-nanowall ZnO hybrid/graphene structure generates a new type of direct current through the specific electron dynamics in the nanowire-nanowall hybrid.

摘要

在生长过程中精确控制一维或二维纳米结构的形态并不容易,这通常会降低器件性能,从而限制了各种先进的纳米级电子学和光电应用。由于其理想的单层平整度和π电子,石墨烯可以作为一种用于控制形态和直接使用电极的平台。在这里,我们报告说,通过直接使用石墨烯作为衬底,通过控制金(Au)催化剂的厚度和生长时间,在约 900°C 的高温下通过热化学气相沉积生长 ZnO,系统地获得了垂直取向的氧化锌(ZnO)纳米线和纳米墙,而对石墨烯层没有造成明显的热损伤。我们阐明了在石墨烯-ZnO 异质结处的 Au 纳米颗粒位置,这对于实现此类纳米结构的先进纳米级电子学和光电应用非常重要。此外,我们还展示了一种压电纳米发电机,该发电机由垂直排列的纳米线-纳米墙 ZnO 杂化/石墨烯结构制成,通过纳米线-纳米墙杂化中的特定电子动力学产生新型直流电。

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