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Observation and spectroscopy of a two-electron Wigner molecule in an ultraclean carbon nanotube

  • Sharon Pecker
  • , F. Kuemmeth
  • , A. Secchi
  • , M. Rontani
  • , D. C. Ralph
  • , P. L. McEuen
  • , Shahal Ilani

Research output: Contribution to journalArticlepeer-review

Abstract

Two electrons on a string form a simple model system where Coulomb interactions are expected to play an interesting role. In the presence of strong interactions, these electrons are predicted to form a Wigner molecule, separating to the ends of the string. This spatial structure is believed to be clearly imprinted on the energy spectrum, yet so far a direct measurement of such a spectrum in a controllable one-dimensional setting is still missing. Here we use an ultraclean carbon nanotube to realize this system in a tunable potential. Using tunnelling spectroscopy we measure the addition spectra of two interacting carriers, electrons or holes, and identify seven low-energy states characterized by their exchange symmetries. The formation of a Wigner molecule is evident from a tenfold quenching of the fundamental excitation energy as compared with the non-interacting value. Our ability to tune the two-carrier state in space and to study it for both electrons and holes provides an unambiguous demonstration of this strongly interacting quantum ground state.

Original languageEnglish GB
Pages (from-to)576-581
Number of pages6
JournalNature Physics
Volume9
Issue number9
DOIs
StatePublished - Sep 2013

ASJC Scopus subject areas

  • General Physics and Astronomy

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