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Strain energy and lateral friction force distributions of carbon nanotubes manipulated into shapes by atomic force microscopy

机译:通过原子力显微镜将碳纳米管的应变能和横向摩擦力分布控制为形状

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摘要

The interplay between local mechanical strain energy and lateral frictional forces determines the shape of carbon nanotubes on substrates. In turn, because of its nanometer-size diameter, the shape of a carbon nanotube strongly influences its local electronic, chemical, and mechanical properties. Few, if any, methods exist for resolving the strain energy and static frictional forces along the length of a deformed nanotube supported on a substrate. We present a method using nonlinear elastic rod theory in which we compute the flexural strain energy and static frictional forces along the length of single walled carbon nanotubes (SWCNTs) manipulated into various shapes on a clean SiO2 substrate. Using only high resolution atomic force microscopy images of curved single walled nanotubes, we estimate flexural strain energy distributions on the order of attojoules per nanometer and the static frictional forces between a SWCNT and SiO2 surface to be a minimum of 230 pN nm−1
机译:局部机械应变能和横向摩擦力之间的相互作用决定了基板上碳纳米管的形状。反过来,由于其纳米尺寸的直径,碳纳米管的形状强烈影响其局部电子,化学和机械性能。很少有方法解决沿支撑在基板上的变形纳米管的长度的应变能和静摩擦力。我们提出了一种使用非线性弹性杆理论的方法,其中我们沿着在干净的SiO2衬底上操纵成各种形状的单壁碳纳米管(SWCNT)的长度计算挠曲应变能和静摩擦力。仅使用弯曲的单壁纳米管的高分辨率原子力显微镜图像,我们估计了每纳米大焦耳量级的弯曲应变能分布,SWCNT和SiO2表面之间的静摩擦力最小为230 pN nm-1

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