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原子力显微镜下氮化硼纳米管的纳观机械切割。

Nanomechanical cutting of boron nitride nanotubes by atomic force microscopy.

机构信息

Department of Mechanical Engineering, State University of New York at Binghamton, Binghamton, NY 13902, USA.

出版信息

Nanotechnology. 2013 Dec 20;24(50):505719. doi: 10.1088/0957-4484/24/50/505719. Epub 2013 Nov 27.

DOI:10.1088/0957-4484/24/50/505719
PMID:24285263
Abstract

The length of nanotubes is a critical structural parameter for the design and manufacture of nanotube-based material systems and devices. High-precision length control of nanotubes by means of mechanical cutting using a scriber has not materialized due to the lack of the knowledge of the appropriate cutting conditions and the tube failure mechanism. In this paper, we present a quantitative nanomechanical study of the cutting of individual boron nitride nanotubes (BNNTs) using atomic force microscopy (AFM) probes. In our nanotube cutting measurements, a nanotube standing still on a flat substrate was laterally scribed by an AFM tip. The tip-tube collision force deformed the tube, and eventually fractured the tube at the collision site by increasing the cutting load. The mechanical response of nanotubes during the tip-tube collision process and the roles of the scribing velocity and the frictional interaction on the tip-tube collision contact in cutting nanotubes were quantitatively investigated by cutting double-walled BNNTs of 2.26-4.28 nm in outer diameter. The fracture strength of BNNTs was also quantified based on the measured collision forces and their structural configurations using contact mechanics theories. Our analysis reports fracture strengths of 9.1-15.5 GPa for the tested BNNTs. The nanomechanical study presented in this paper demonstrates that the AFM-based nanomechanical cutting technique not only enables effective control of the length of nanotubes with high precision, but is also promising as a new nanomechanical testing technique for characterizing the mechanical properties of tubular nanostructures.

摘要

纳米管的长度是设计和制造基于纳米管的材料系统和器件的关键结构参数。由于缺乏适当的切割条件和管失效机制,使用划线器进行机械切割来实现纳米管的高精度长度控制尚未实现。在本文中,我们使用原子力显微镜(AFM)探针对单个氮化硼纳米管(BNNTs)的切割进行了定量的纳米力学研究。在我们的纳米管切割测量中,一个静止在平坦基底上的纳米管被 AFM 探针横向划线。尖端-管碰撞力使管变形,并通过增加切割载荷最终在碰撞点处使管断裂。通过切割外径为 2.26-4.28nm 的双壁 BNNTs,定量研究了尖端-管碰撞过程中纳米管的力学响应以及划线速度和尖端-管摩擦相互作用在切割纳米管时对尖端-管碰撞接触的影响。还基于测量的碰撞力及其结构配置使用接触力学理论对 BNNTs 的断裂强度进行了量化。我们的分析报告了所测试的 BNNTs 的断裂强度为 9.1-15.5GPa。本文提出的纳米力学研究表明,基于 AFM 的纳米力学切割技术不仅能够有效地控制纳米管的长度,而且还具有作为一种新的纳米力学测试技术来表征管状纳米结构的机械性能的潜力。

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Nanoscale Adv. 2019 Oct 23;1(12):4722-4728. doi: 10.1039/c9na00481e. eCollection 2019 Dec 3.
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Quantitative Characterization of Structural and Mechanical Properties of Boron Nitride Nanotubes in High Temperature Environments.
高温环境下氮化硼纳米管结构和力学性能的定量表征
Sci Rep. 2017 Sep 12;7(1):11388. doi: 10.1038/s41598-017-11795-9.