Tang Qian, Shi San-Qiang, Zhou Limin
Department of Mechanical Engineering, The Hong Kong Polytechnic University, Hung Hom, Kowloon, Hong Kong.
J Nanosci Nanotechnol. 2004 Nov;4(8):948-63. doi: 10.1166/jnn.2004.131.
Atomic force microscopy (AFM) was developed in 1986. It is an important and versatile surface technique, and is used in many research fields. In this review, we have summarized the methods and applications of AFM, with emphasis on nanofabrication. AFM is capable of visualizing surface properties at high spatial resolution and determining biomolecular interaction as well as fabricating nanostructures. Recently, AFM-based nanotechnologies such as nanomanipulation, force lithography, nanografting, nanooxidation and dip-pen nanolithography were developed rapidly. AFM tip (typical radius ranged from several nanometers to tens of nanometers) is used to modify the sample surface, either physically or chemically, at nanometer scale. Nanopatterns composed of semiconductors, metal, biomolecules, polymers, etc., were constructed with various AFM-based nanotechnologies, thus making AFM a promising technique for nanofabrication. AFM-based nanotechnologies have potential applications in nanoelectronics, bioanalysis, biosensors, actuators and high-density data storage devices.
原子力显微镜(AFM)于1986年问世。它是一种重要且用途广泛的表面技术,应用于许多研究领域。在本综述中,我们总结了AFM的方法和应用,重点是纳米制造。AFM能够以高空间分辨率可视化表面特性、确定生物分子相互作用以及制造纳米结构。最近,基于AFM的纳米技术如纳米操纵、力光刻、纳米接枝、纳米氧化和蘸笔纳米光刻发展迅速。AFM针尖(典型半径范围从几纳米到几十纳米)用于在纳米尺度上对样品表面进行物理或化学修饰。利用各种基于AFM的纳米技术构建了由半导体、金属、生物分子、聚合物等组成的纳米图案,从而使AFM成为一种有前途的纳米制造技术。基于AFM的纳米技术在纳米电子学、生物分析、生物传感器、致动器和高密度数据存储设备等方面具有潜在应用。