Ginger David S, Zhang Hua, Mirkin Chad A
Department of Chemistry, Northwestern University, 2145 Sheridan Road, Evanston, IL 60208-3113, USA.
Angew Chem Int Ed Engl. 2004 Jan;43(1):30-45. doi: 10.1002/anie.200300608.
The ability to tailor the chemical composition and structure of a surface on the 1-100 nm length scale is important to researchers studying topics ranging from electronic conduction, to catalysis, to biological recognition in nanoscale systems. Dip-pen nanolithography (DPN) is a new scanning-probe based direct-write tool for generating such surface-patterned chemical functionality on the sub-100 nm length-scale, and it is a technique that is accessible to any researcher who can use an atomic force microscope. This article introduces DPN and reviews the rapid growth of the field of DPN-related research over the past few years. Topics covered range from the development of new classes of DPN-compatible chemistry, to experimental and theoretical advances in the understanding of the processes controlling tip-substrate ink transport, to the implementation of micro-electro-mechanical system (MEMS) based strategies for parallel DPN applications.
在1至100纳米长度尺度上定制表面化学成分和结构的能力,对于研究从电子传导、催化到纳米级系统中的生物识别等课题的研究人员而言至关重要。蘸笔纳米光刻技术(DPN)是一种新型的基于扫描探针的直写工具,用于在亚100纳米长度尺度上生成这种具有表面图案化化学功能的结构,并且它是任何能够使用原子力显微镜的研究人员都可以掌握的一项技术。本文介绍了DPN,并回顾了过去几年中与DPN相关的研究领域的快速发展。涵盖的主题范围从新型DPN兼容化学的发展,到对控制针尖-基底墨水传输过程的理解方面的实验和理论进展,再到基于微机电系统(MEMS)的并行DPN应用策略的实施。