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采用原子力显微镜纳米划痕法在底部制备具有梯形纳米结构的纳米通道。

Fabrication of nanochannels with ladder nanostructure at the bottom using AFM nanoscratching method.

机构信息

Center for Precision Engineering, Harbin Institute of Technology, P.O. Box 413, Harbin, Heilongjiang 150001, People's Republic of China.

出版信息

Nanoscale Res Lett. 2014 May 6;9(1):212. doi: 10.1186/1556-276X-9-212. eCollection 2014.

Abstract

This letter presents a novel atomic force microscopy (AFM)-based nanomanufacturing method combining the tip scanning with the high-precision stage movement to fabricate nanochannels with ladder nanostructure at the bottom by continuous scanning with a fixed scan size. Different structures can be obtained according to the matching relation of the tip feeding velocity and the precision stage moving velocity. This relationship was first studied in detail to achieve nanochannels with different ladder nanostructures at the bottom. Machining experiments were then performed to fabricate nanochannels on an aluminum alloy surface to demonstrate the capability of this AFM-based fabrication method presented in this study. Results show that the feed value and the tip orientation in the removing action play important roles in this method which has a significant effect on the machined surfaces. Finally, the capacity of this method to fabricate a large-scale nanochannel was also demonstrated. This method has the potential to advance the existing AFM tip-based nanomanufacturing technique of the formation these complex structures by increasing the removal speed, simplifying the processing procedure and achieving the large-scale nanofabrication.

摘要

这封信提出了一种新的基于原子力显微镜(AFM)的纳米制造方法,该方法将尖端扫描与高精度工作台运动相结合,通过固定扫描尺寸的连续扫描在底部制造具有梯形纳米结构的纳米通道。根据尖端进给速度和精密工作台移动速度的匹配关系,可以获得不同的结构。首先详细研究了这种关系,以实现底部具有不同梯形纳米结构的纳米通道。然后进行了加工实验,在铝合金表面上制造了纳米通道,以证明本研究中提出的基于 AFM 的制造方法的能力。结果表明,在去除过程中,进给值和尖端方向在这种方法中起着重要作用,对加工表面有显著影响。最后,还证明了该方法制造大规模纳米通道的能力。该方法通过提高去除速度、简化加工过程和实现大规模纳米制造,有可能推进现有的基于 AFM 尖端的纳米制造技术来形成这些复杂结构。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d92f/4039066/8fd265744460/1556-276X-9-212-1.jpg

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