Direct generation of linearly polarized single photons with a deterministic axis in quantum dots

  • Tong Wang
  • , Tim J. Puchtler
  • , Saroj K. Patra
  • , Tongtong Zhu
  • , Muhammad Ali
  • , Tom J. Badcock
  • , Tao Ding
  • , Rachel A. Oliver
  • , Stefan Schulz
  • , Robert A. Taylor

Research output: Contribution to journalArticlepeer-review

Abstract

We report the direct generation of linearly polarized single photons with a deterministic polarization axis in self-assembled quantum dots (QDs), achieved by the use of non-polar InGaN without complex device geometry engineering. Here, we present a comprehensive investigation of the polarization properties of these QDs and their origin with statistically significant experimental data and rigorous k·p modeling. The experimental study of 180 individual QDs allows us to compute an average polarization degree of 0.90, with a standard deviation of only 0.08. When coupled with theoretical insights, we show that these QDs are highly insensitive to size differences, shape anisotropies, and material content variations. Furthermore, 91% of the studied QDs exhibit a polarization axis along the crystal [1-100] axis, with the other 9% polarized orthogonal to this direction. These features give non-polar InGaN QDs unique advantages in polarization control over other materials, such as conventional polar nitride, InAs, or CdSe QDs. Hence, the ability to generate single photons with polarization control makes non-polar InGaN QDs highly attractive for quantum cryptography protocols.

Original languageEnglish
Pages (from-to)1175-1183
Number of pages9
JournalNanophotonics
Volume6
Issue number5
DOIs
Publication statusPublished - 28 Aug 2017
Externally publishedYes

Keywords

  • A-Plane InGaN
  • deterministic polarization axis
  • k·p theory
  • linearly polarized single photon
  • quantum dots

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