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Crystal-Phase Quantum Wires: One-Dimensional Heterostructures with Atomically Flat Interfaces.

Pierre CorfdirHong LiOliver MarquardtGuanhui GaoMaciej R MolasJohannes K ZettlerDavid van TreeckTimur FlissikowskiMarek PotemskiClaudia DraxlAchim TrampertSergio Fernández-GarridoHolger T GrahnOliver Brandt
Published in: Nano letters (2017)
In semiconductor quantum-wire heterostructures, interface roughness leads to exciton localization and to a radiative decay rate much smaller than that expected for structures with flat interfaces. Here, we uncover the electronic and optical properties of the one-dimensional extended defects that form at the intersection between stacking faults and inversion domain boundaries in GaN nanowires. We show that they act as crystal-phase quantum wires, a novel one-dimensional quantum system with atomically flat interfaces. These quantum wires efficiently capture excitons whose radiative decay gives rise to an optical doublet at 3.36 eV at 4.2 K. The binding energy of excitons confined in crystal-phase quantum wires is measured to be more than twice larger than that of the bulk. As a result of their unprecedented interface quality, these crystal-phase quantum wires constitute a model system for the study of one-dimensional excitons.
Keyphrases
  • molecular dynamics
  • energy transfer
  • room temperature
  • monte carlo
  • high resolution
  • mass spectrometry