Dynamically controlling the emission of single excitons in photonic crystal cavities
arXiv:1411.0424 · doi:10.1038/ncomms6786
Abstract
Single excitons in semiconductor microcavities represent a solid-state and scalable platform for cavity quantum electrodynamics (c-QED), potentially enabling an interface between flying (photon) and static (exciton) quantum bits in future quantum networks. While both single-photon emission and the strong coupling regime have been demonstrated, further progress has been hampered by the inability to control the coherent evolution of the c-QED system in real time, as needed to produce and harness charge-photon entanglement. Here, using the ultrafast electrical tuning of the exciton energy in a photonic crystal (PhC) diode, we demonstrate the dynamic control of the coupling of a single exciton to a PhC cavity mode on a sub-ns timescale, faster than the natural lifetime of the exciton, for the first time. This opens the way to the control of single-photon waveforms, as needed for quantum interfaces, and to the real-time control of solid-state c-QED systems.
8 pages, 4 figures
References in corpus (6)
- The Quantum Internet
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Cited by in corpus (6)
- Quantum Frequency Conversion of a Quantum Dot Single-Photon Source on a Nanophotonic Chip
- Integrated Single Photon Emitters
- Multiharmonic frequency-chirped transducers for surface-acoustic-wave optomechanics
- Cooperative energy transfer controls the spontaneous emission rate beyond field enhancement limits
- Electrically driven quantum light emission in electromechanically-tuneable photonic crystal cavities
- All-optical dynamic modulation of spontaneous emission rate in hybrid optomechanical cavity quantum electrodynamics systems