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Parallel fabrication of monolithic nanoscopic tunnel junctions for molecular devices

机译:用于分子器件的单片纳米隧道结的并行制造

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摘要

Nanoelectrode tunneling devices for molecular level measurements have been grown using atomic layer deposition. These devices are two-terminal nanostructures separated by a free space region on the order of one to several nanometers where molecules can adsorb and be probed with electrical measurements including electron tunneling spectroscopy. Successful fabrication of parallel devices arranged in arrays is achieved by exploiting a nanofeedback mechanism that aids in the convergence of independent devices to tunneling. Independent devices are shown to behave similarly for thermal expansion, adsorption, desorption, and tunneling spectroscopy measurements. Adsorption is shown to be strongly influenced by the large electric fields in the nanoscopic tunnel junctions, and a model based on electric field forces qualitatively captures these effects. Desorption events are observed as stochastic processes for the independent devices and parallel inelastic electron tunneling spectroscopy measurements show features that are similar between independent devices. These data demonstrate parallel operation of nanoelectrode devices and suggest that it may be possible to scale the devices to have many nanojunctions operating in parallel.
机译:已经使用原子层沉积来生长用于分子水平测量的纳米电极隧穿装置。这些设备是两末端纳米结构,由一个到几纳米量级的自由空间区域隔开,分子可以被分子吸附并通过电子测量(包括电子隧道光谱)进行探测。通过利用纳米反馈机制可以成功制造出排列成阵列的并行设备,该机制有助于将独立的设备融合到隧道中。在热膨胀,吸附,解吸和隧穿光谱测量中,独立设备表现出相似的性能。吸附作用受到纳米隧道结中大电场的强烈影响,基于电场力的模型定性地捕获了这些效应。解吸事件是作为独立设备的随机过程观察到的,并行非弹性电子隧穿光谱测量显示独立设备之间的特征相似。这些数据证明了纳米电极器件的并行操作,并暗示可能缩放器件以使许多纳米结并行运行。

著录项

  • 来源
    《Journal of Vacuum Science & Technology》 |2010年第3期|P.538-544|共7页
  • 作者

    R. Gupta; B. G. Willis;

  • 作者单位

    Newark, Delaware 19716;

    rnChemical, Materials and Biomolecular Engineering, University of Connecticut, Storrs, Connecticut 06269;

  • 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);
  • 原文格式 PDF
  • 正文语种 eng
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