Shin Dong-Myeong, Kang Seok Hee, Kim Seongsu, Seung Wanchul, Tsege Ermias Libnedengel, Kim Sang-Woo, Kim Hyung Kook, Hong Suck Won, Hwang Yoon-Hwae
Department of Nanoenergy Engineering, BK21 Plus Nanoconvergence Technology Division, Pusan National University (PNU), Miryang.
Department of Cogno-Mechatronics Engineering, Pusan National University (PNU), Busan.
J Vis Exp. 2016 Jan 15(107):e53491. doi: 10.3791/53491.
Well-aligned ZnO nanostructures have been intensively studied over the last decade for remarkable physical properties and enormous applications. Here, we describe a one-step fabrication technique to synthesis freestanding ZnO nanorod/graphene/ZnO nanorod double heterostructure. The preparation of the double heterostructure is performed by using thermal chemical vapor deposition (CVD) and preheating hydrothermal technique. In addition, the morphological properties were characterized by using the scanning electron microscopy (SEM). The utility of freestanding double heterostructure is demonstrated by fabricating the piezoelectric nanogenerator. The electrical output is improved up to 200% compared to that of a single heterostructure owing to the coupling effect of the piezoelectricity between the arrays of ZnO nanorods on the top and bottom of graphene. This unique double heterostructure have a tremendous potential for applications of electrical and optoelectrical devices where the high number density and specific surface area of nanorod are needed, such as pressure sensor, immuno-biosensor and dye-sensitized solar cells.
在过去十年中,排列良好的氧化锌纳米结构因其卓越的物理性能和广泛的应用而受到广泛研究。在此,我们描述了一种一步法制备技术,用于合成独立的氧化锌纳米棒/石墨烯/氧化锌纳米棒双异质结构。双异质结构的制备采用热化学气相沉积(CVD)和预热水热技术。此外,通过扫描电子显微镜(SEM)对其形态特性进行了表征。通过制造压电纳米发电机证明了独立双异质结构的实用性。由于石墨烯顶部和底部的氧化锌纳米棒阵列之间的压电耦合效应,与单异质结构相比,电输出提高了200%。这种独特的双异质结构在需要纳米棒的高数量密度和比表面积的电气和光电器件应用中具有巨大潜力,如压力传感器、免疫生物传感器和染料敏化太阳能电池。