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Atomic rheology of gold nanojunctions

机译:金纳米结的原子流变学

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Despite extensive investigations of dissipation and deformation processes in micro-and nano-sized metallic samples(1-7), the mechanisms at play during the deformation of systems with ultimate (molecular) size remain unknown. Although metallic nanojunctions, which are obtained by stretching metallic wires down to the atomic level, are typically used to explore atomic-scale contacts(5,8-11), it has not been possible until now to determine the full equilibrium and non-equilibrium rheological flow properties of matter at such scales. Here, by using an atomic-force microscope equipped with a quartz tuning fork, we combine electrical and rheological measurements on angstrom-size gold junctions to study the non-linear rheology of this model atomic system. By subjecting the junction to increasing subnanometric deformations we observe a transition from a purely elastic regime to a plastic one, and eventually to a viscous-like fluidized regime, similar to the rheology of soft yielding materials(12-14), although orders of magnitude different in length scale. The fluidized state furthermore exhibits capillary attraction, as expected for liquid capillary bridges. This shear fluidization cannot be captured by classical models of friction between atomic planes(15,16) and points to an unexpected dissipative behaviour of defect-free metallic junctions at ultimate scales. Atomic rheology is therefore a powerful tool that can be used to probe the structural reorganization of atomic contacts.
机译:尽管对微米级和纳米级金属样品的耗散和变形过程进行了广泛的研究(1-7),但具有最终(分子)尺寸的系统变形过程中的作用机理仍然未知。尽管通常通过将金属线拉伸到原子水平来获得金属纳米结,以探索原子尺度的接触(5,8-11),但直到现在才可能确定完全平衡和非平衡物质在这种尺度下的流变特性。在这里,通过使用配备有石英音叉的原子力显微镜,我们结合了埃级金结的电学和流变学测量,以研究此模型原子系统的非线性流变学。通过使连接处承受不断增大的亚纳米变形,我们观察到从纯弹性状态到塑性状态的过渡,最终到类似于粘性屈服材料流变学的粘性状流化状态(12-14),尽管数量级大长度比例不同。如液体毛细管桥所预期的那样,流化状态还表现出毛细管吸引力。这种剪切流态化不能用原子平面之间的经典摩擦模型来捕获(15,16),并且指出了无缺陷的无缺陷金属结在最终尺度上的意外耗散行为。因此,原子流变学是一种功能强大的工具,可用于探测原子接触的结构重组。

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  • 来源
    《Nature》 |2019年第7756期|393-397|共5页
  • 作者单位

    Univ Paris Diderot, Sorbonne Univ, Univ PSL,CNRS, Lab Phys,Sorbonne Paris Cite,UMR CNRS 8550,ENS, Paris, France;

    Univ Paris Diderot, Sorbonne Univ, Univ PSL,CNRS, Lab Phys,Sorbonne Paris Cite,UMR CNRS 8550,ENS, Paris, France;

    Univ Paris Diderot, Sorbonne Univ, Univ PSL,CNRS, Lab Phys,Sorbonne Paris Cite,UMR CNRS 8550,ENS, Paris, France;

    Univ Paris Diderot, Sorbonne Univ, Univ PSL,CNRS, Lab Phys,Sorbonne Paris Cite,UMR CNRS 8550,ENS, Paris, France;

    Univ Paris Diderot, Sorbonne Univ, Univ PSL,CNRS, Lab Phys,Sorbonne Paris Cite,UMR CNRS 8550,ENS, Paris, France;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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  • 入库时间 2022-08-18 04:17:41

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