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Atomic configuration, conductance, and tensile force of platinum wires of single-atom width

机译:单原子宽度的铂丝的原子构型,电导和拉力

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摘要

Platinum (Pt) wires of single-atom width were produced by the retraction of a Pt nanotip from contact with a Pt plate at room temperature inside a transmission electron microscope. The distance between the nanotip and the plate was controlled using a conductance feedback system, as a result of which wires showing certain conductance values were observed continuously by in situ lattice imaging. Simultaneously, the force acting on the wires was measured using a function of atomic force microscopy. The tip-plate distance was also increased with a constant speed, and the atomic configuration, force, and conductance were similarly investigated. The single-atom-width Pt wires were found to exhibit straight shapes with an interatomic distance of 0.28±0.03 nm. The wires were stable at a tensile force of approximately 1 nN; the observed interatomic distance resulted from elastic expansion. The present study demonstrated experimental evidence for the relationship between wire length and conductance; the wires extend from a three-atom length to a five-atom length as the selected feedback conductance decreases from 2.0 to 0.5G0 (where G0=2e2/h, e being the charge of an electron and h Planck’s constant). Contacts exhibiting a conductance of 3.0G0 were two-atom-width contacts. In a conductance histogram constructed from the simple retraction, only one peak was observed at 1.3G0. Thus, it was found that the conductance of single-atom-width Pt wires is less than 3.0G0, with 1.3G0 being that of the most-stable state.
机译:通过在透射电子显微镜内于室温下将Pt纳米尖端从与Pt板的接触中缩回来制备单原子宽度的铂(Pt)线。使用电导反馈系统控制纳米尖端与平板之间的距离,其结果是通过原位晶格成像连续观察到显示出一定电导值的导线。同时,使用原子力显微镜的功能测量作用在电线上的力。顶板距离也以恒定速度增加,并且类似地研究了原子构型,力和电导率。发现单原子宽度的Pt线表现出笔直形状,原子间距离为0.28±0.03 nm。导线在大约1 nN的拉力下稳定;观察到的原子间距离是由弹性膨胀引起的。本研究证明了导线长度与电导率之间关系的实验证据。当选定的反馈电导从2.0降低到0.5G0时,导线从三原子长延伸到五原子长(其中G0 = 2e2 / h,e是电子的电荷,h普朗克常数)。展现出3.0G0电导的接触是两个原子宽度的接触。在通过简单回缩构造的电导直方图中,在1.3G0处仅观察到一个峰。因此,发现单原子宽度的Pt线的电导小于3.0G0,其中1.3G0是最稳定状态的电导。

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