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One-dimensional confinement and width-dependent bandgap formation in epitaxial graphene nanoribbons

Karakachian, Hrag (author)
Max Planck Inst Festkorperforsch, Germany,Max Planck Institute for Solid State Research
Nguyen, T. T. Nhung (author)
Tech Univ Chemnitz, Germany,Chemnitz University of Technology
Aprojanz, Johannes (author)
Tech Univ Chemnitz, Germany; Leibniz Univ Hannover, Germany,Chemnitz University of Technology,Leibniz University of Hannover
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Zakharov, Alexei A. (author)
Lund University,Lunds universitet,MAX IV-laboratoriet,MAX IV Laboratory,Lund Univ, Sweden
Yakimova, Rositsa (author)
Linköping University,Linköpings universitet,Halvledarmaterial,Tekniska fakulteten
Rosenzweig, Philipp (author)
Max Planck Inst Festkorperforsch, Germany,Max Planck Institute for Solid State Research
Polley, Craig M. (author)
Lund University,Lunds universitet,MAX IV-laboratoriet,MAX IV Laboratory,Lund Univ, Sweden
Balasubramanian, Thiagarajan (author)
Lund University,Lunds universitet,MAX IV-laboratoriet,MAX IV Laboratory,Lund Univ, Sweden
Tegenkamp, Christoph (author)
Tech Univ Chemnitz, Germany,Chemnitz University of Technology,Leibniz University of Hannover
Power, Stephen R. (author)
Trinity Coll Dublin, Ireland,Trinity College Dublin
Starke, Ulrich (author)
Max Planck Inst Festkorperforsch, Germany,Max Planck Institute for Solid State Research
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 (creator_code:org_t)
2020-12-11
2020
English.
In: Nature Communications. - : NATURE RESEARCH. - 2041-1723. ; 11:1
  • Journal article (peer-reviewed)
Abstract Subject headings
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  • The ability to define an off state in logic electronics is the key ingredient that is impossible to fulfill using a conventional pristine graphene layer, due to the absence of an electronic bandgap. For years, this property has been the missing element for incorporating graphene into next-generation field effect transistors. In this work, we grow high-quality armchair graphene nanoribbons on the sidewalls of 6H-SiC mesa structures. Angle-resolved photoelectron spectroscopy (ARPES) and scanning tunneling spectroscopy measurements reveal the development of a width-dependent semiconducting gap driven by quantum confinement effects. Furthermore, ARPES demonstrates an ideal one-dimensional electronic behavior that is realized in a graphene-based environment, consisting of well-resolved subbands, dispersing and non-dispersing along and across the ribbons respectively. Our experimental findings, coupled with theoretical tight-binding calculations, set the grounds for a deeper exploration of quantum confinement phenomena and may open intriguing avenues for new low-power electronics. Here, the authors investigate armchair graphene nanoribbons by angle-resolved photoelectron spectroscopy, and show the development of a width-dependent semiconducting gap driven by quantum confinement effects, and an ideal one-dimensional electronic behaviour.

Subject headings

NATURVETENSKAP  -- Fysik -- Den kondenserade materiens fysik (hsv//swe)
NATURAL SCIENCES  -- Physical Sciences -- Condensed Matter Physics (hsv//eng)

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