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Carbon nanotube-clamped metal atomic chain

机译:碳纳米管固定的金属原子链

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摘要

Metal atomic chain (MAC) is an ultimate one-dimensional structure with unique physical properties, such as quantized conductance, colossal magnetic anisotropy, and quantized magnetoresistance. Therefore, MACs show great potential as possible components of nanoscale electronic and spintronic devices. However, MACs are usually suspended between two macroscale metallic electrodes; hence obvious technical barriers exist in the interconnection and integration of MACs. Here we report a carbon nanotube (CNT)-clamped MAC, where CNTs play the roles of both nanoconnector and electrodes. This nanostructure is prepared by in situ machining a metal-filled CNT, including peeling off carbon shells by spatially and elementally selective electron beam irradiation and further elongating the exposed metal nanorod. The microstructure and formation process of this CNT-clamped MAC are explored by both transmission electron microscopy observations and theoretical simulations. First-principles calculations indicate that strong covalent bonds are formed between the CNT and MAC. The electrical transport property of the CNT-clamped MAC was experimentally measured, and quantized conductance was observed.
机译:金属原子链(MAC)是最终的一维结构,具有独特的物理特性,例如量化的电导,巨大的磁各向异性和量化的磁阻。因此,MAC显示出作为纳米级电子和自旋电子设备的可能组件的巨大潜力。但是,MAC通常悬挂在两个大型金属电极之间。因此,MAC的互连和集成存在明显的技术障碍。在这里,我们报告了碳纳米管(MAC)夹住的MAC,其中CNT扮演着纳米连接器和电极的角色。该纳米结构是通过原位加工金属填充的CNT制备的,包括通过空间和元素选择性电子束辐照剥离碳壳,并进一步延长裸露的金属纳米棒。通过透射电子显微镜观察和理论模拟,探索了这种碳纳米管固定的MAC的微观结构和形成过程。第一性原理计算表明,在CNT和MAC之间形成了牢固的共价键。通过实验测量了碳纳米管固定的MAC的电传输性能,并观察到了量化的电导率。

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