Lao Changshi, Li Yi, Wong C P, Wang Z L
School of Materials Science and Engineering, Georgia Institute of Technology, Atlanta, Georgia 30332-0245, USA.
Nano Lett. 2007 May;7(5):1323-8. doi: 10.1021/nl070359m. Epub 2007 Mar 31.
By functionalizing the surfaces of ZnO nanobelts (NBs) with a thin self-assembled molecular layer, the electrical and optoelectronic performances of a single NB-based device are drastically improved. For a single NB-based device, due to energy band tuning and surface modification, the conductance was enhanced by 6 orders of magnitude upon functionalization; a coating molecule layer has changed a Schottky contact into an Ohmic contact without sophisticated deposition of multilayered metals. A functionalized NB showed negative differential resistance and exhibited huge improved photoconductivity and gas sensing response. The functionalized molecular layer also greatly reduced the etching rate of the ZnO NBs by buffer solution, largely extending their life time for biomedical applications. Our study demonstrates a new approach for improving the physical properties of oxide NBs and nanowires for device applications.
通过用薄的自组装分子层对氧化锌纳米带(NBs)表面进行功能化处理,基于单个纳米带的器件的电学和光电性能得到了显著改善。对于基于单个纳米带的器件,由于能带调谐和表面改性,功能化后电导提高了6个数量级;一个涂层分子层将肖特基接触转变为欧姆接触,而无需复杂的多层金属沉积。功能化的纳米带表现出负微分电阻,并展现出极大改善的光电导性和气体传感响应。功能化分子层还大大降低了缓冲溶液对氧化锌纳米带的蚀刻速率,极大地延长了它们在生物医学应用中的使用寿命。我们的研究展示了一种改善氧化物纳米带和纳米线用于器件应用的物理性能的新方法。