Electrically Driven Single-Photon Source
Zhiliang Yuan, Beata Kardynał, R. M. Stevenson, A. J. Shields, Charlene J. Lobo, Ken B. Cooper, Neil S. Beattie, D. A. Ritchie, M. Pepper
Abstract
Zhiliang Yuan, Beata Kardynał, R. M. Stevenson, A. J. Shields, Charlene J. Lobo, Ken B. Cooper, Neil S. Beattie, D. A. Ritchie, M. Pepper
Abstract
Electroluminescence from a single quantum dot within the intrinsic region of a p-i-n junction is shown to act as an electrically driven single-photon source. At low injection currents, the dot electroluminescence spectrum reveals a single sharp line due to exciton recombination, while another line due to the biexciton emerges at higher currents. The second-order correlation function of the diode displays anti-bunching under a continuous drive current. Single-photon emission is stimulated by subnanosecond voltage pulses. These results suggest that semiconductor technology can be used to mass-produce a single-photon source for applications in quantum information technology.
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Electroluminescence from a single quantum dot within the intrinsic region of a p-i-n junction is shown to act as an electrically driven single-photon source. At low injection currents, the dot electroluminescence spectrum reveals a single sharp line due to exciton recombination, while another line due to the biexciton emerges at higher currents. The second-order correlation function of the diode displays anti-bunching under a continuous drive current. Single-photon emission is stimulated by subnanosecond voltage pulses. These results suggest that semiconductor technology can be used to mass-produce a single-photon source for applications in quantum information technology.
Key concepts: Electroluminescence, Quantum dot, Physics, Diode, Photon, Biexciton, Optoelectronics, Exciton