4.6 Article

Resolving the temporal evolution of line broadening in single quantum emitters

期刊

OPTICS EXPRESS
卷 27, 期 24, 页码 35290-35307

出版社

Optica Publishing Group
DOI: 10.1364/OE.27.035290

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资金

  1. H2020 European Research Council [679183]
  2. Austrian Science Fund [P29603]
  3. Seventh Framework Programme [601126]
  4. Central European Institute of Technology [7AMB17AT044]
  5. Horizon 2020 Framework Programme [731473]
  6. European Metrology Programme for Innovation and Research [17FUN06]
  7. Bundesministerium fur Wissenschaft, Forschung und Wirtschaft [CZ 07/2017]
  8. Ministerstvo Skolstvi, Mladeze a Telovychovy
  9. Linz Institute of Technology (LIT)
  10. Bayerisches Staatsministerium fur Bildung und Kultus, Wissenschaft und Kunst
  11. Deutsche Forschungsgemeinschaft [SCHN1376 5.1]
  12. QuantERA (Hyper-U-P-S)
  13. QuantERA (CUSPIDOR)
  14. LIT Secure and Correct Systems Lab
  15. European Research Council (ERC) [679183] Funding Source: European Research Council (ERC)

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Light emission from solid-state quantum emitters is inherently prone to environmental decoherence, which results in a line broadening and in the deterioration of photon indistinguishability. Here we employ photon correlation Fourier spectroscopy (PCFS) to study the temporal evolution of such a broadening in two prominent systems: GaAs and In(Ga)As quantum dots. Differently from previous experiments, the emitters are driven with short laser pulses as required for the generation of high-purity single photons, the time scales we probe range from a few nanoseconds to milliseconds and, simultaneously, the spectral resolution we achieve can be as small as similar to 2 mu eV. We find pronounced differences in the temporal evolution of different optical transition lines, which we attribute to differences in their homogeneous linewidth and sensitivity to charge noise. We analyze the effect of irradiation with additional white light, which reduces blinking at the cost of enhanced charge noise. Due to its robustness against experimental imperfections and its high temporal resolution and bandwidth, PCFS outperforms established spectroscopy techniques, such as Michelson interferometry. We discuss its practical implementation and the possibility to use it to estimate the indistinguishability of consecutively emitted single photons for applications in quantum communication and photonic-based quantum information processing. Published by The Optical Society under the terms of the Creative Commons Attribution 4.0 License.

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