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October 8, 1993Science1,689 citations

Confinement of Electrons to Quantum Corrals on a Metal Surface

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MCMichael F. CrommieCLChristopher P. LutzDED. M. Eigler

Key Points

  • This research aims to develop a method for confining electrons in nanometer-sized structures on metal surfaces.
  • Constructed closed structures (quantum corrals) on a copper(111) surface using iron adatoms.
  • Positioned iron adatoms individually with a scanning tunneling microscope at 4 kelvin.
  • Performed tunneling spectroscopy to analyze the electronic states inside the corral.
  • Created a circular quantum corral with a radius of 71.3 A using 48 iron adatoms.
  • Observed discrete resonances through tunneling spectroscopy, indicating size quantization.
  • STM images revealed the interior local density of states aligns with theoretical predictions for a two-dimensional box.

Abstract

A method for confining electrons to artificial structures at the nanometer lengthscale is presented. Surface state electrons on a copper(111) surface were confined to closed structures (corrals) defined by barriers built from iron adatoms. The barriers were assembled by individually positioning iron adatoms with the tip of a 4-kelvin scanning tunneling microscope (STM). A circular corral of radius 71.3 A was constructed in this way out of 48 iron adatoms. Tunneling spectroscopy performed inside of the corral revealed a series of discrete resonances, providing evidence for size quantization. STM images show that the corral's interior local density of states is dominated by the eigenstate density expected for an electron trapped in a round two-dimensional box.

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Cite This Study

Crommie et al. (1993) studied this question.

synapsesocial.com/papers/6a1d19967f448865515dc739https://doi.org/10.1126/science.262.5131.218
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