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Reversible electromechanical characteristics of carbon nanotubes under local-probe manipulation

机译:局部探针操纵下碳纳米管的可逆机电特性

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摘要

The effects of mechanical deformation on the electrical properties of carbon nanotubes are of interest given the practical potential of nanotubes in electromechanical devices, and they have been studied using both theoretical and experimental approaches. One recent experiment used the tip of an atomic force microscope (AFM) to manipulate multi-walled nanotubes, revealing that changes in the sample resistance were small unless the nanotubes fractured or the metal-tube contacts were perturbed. But it remains unclear how mechanical deformation affects the intrinsic electrical properties of nanotubes. Here we report an experimental and theoretical elucidation of the electromechanical characteristics of individual single-walled carbon nanotubes (SWNTs) under local-probe manipulation. We use AFM tips to deflect suspended SWNTs reversibly, without changing the contact resistance; in situ electrical measurements reveal that the conductance of an SWNT sample can be reduced by two orders of magnitude when deformed by an AFM tip. Our tight-binding simulations indicate that this effect is owing to the formation of local sp~3 bonds caused by the mechanical pushing action of the tip.
机译:考虑到机电设备中纳米管的实际潜力,机械变形对碳纳米管电性能的影响是令人关注的,并且已经使用理论和实验方法对其进行了研究。最近的一项实验使用原子力显微镜(AFM)的尖端来操纵多壁纳米管,这表明除非纳米管破裂或金属管接触受到干扰,否则样品电阻的变化很小。但是,尚不清楚机械变形如何影响纳米管的固有电性能。在这里,我们报告了在局部探针操纵下单个单壁碳纳米管(SWNTs)的机电特性的实验和理论解释。我们使用AFM尖端在不改变接触电阻的情况下可逆地偏转悬浮的SWNT。原位电学测量表明,当AFM尖端变形时,SWNT样品的电导率可降低两个数量级。我们的紧密结合模拟表明,这种影响是由于尖端的机械推动作用引起的局部sp〜3键的形成。

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