Electromagnetically Induced Transparency of On-demand Single Photons in a Hybrid Quantum Network

L. Schweickert, K.D. Jöns, M. Namazi, G. Cui, T. Lettner, K.D. Zeuner, L.S. Montaña, S.F.C. da Silva, M. Reindl, H. Huang, R. Trotta, A. Rastelli, V. Zwiller, E. Figueroa, ArXiv:1808.05921 (2018).

Download
No fulltext has been uploaded.
Preprint | English
Author
Schweickert, Lucas; Jöns, Klaus D.LibreCat; Namazi, Mehdi; Cui, Guodong; Lettner, Thomas; Zeuner, Katharina D.; Montaña, Lara Scavuzzo; Silva, Saimon Filipe Covre da; Reindl, Marcus; Huang, Huiying; Trotta, Rinaldo; Rastelli, Armando
All
Abstract
Long range quantum communication and quantum information processing require the development of light-matter interfaces for distributed quantum networks. Even though photons are ideal candidates for network links to transfer quantum information, the system of choice for the realization of quantum nodes has not been identified yet. Ideally, one strives for a hybrid network architecture, which will consist of different quantum systems, combining the strengths of each system. However, interfacing different quantum systems via photonic channels remains a major challenge because a detailed understanding of the underlying light-matter interaction is missing. Here, we show the coherent manipulation of single photons generated on-demand from a semiconductor quantum dot using a rubidium vapor quantum memory, forming a hybrid quantum network. We demonstrate the engineering of the photons' temporal wave function using four-level atoms and the creation of a new type of electromagnetic induced transparency for quantum dot photons on resonance with rubidium transitions. Given the short lifetime of our quantum dot transition the observed dynamics cannot be explained in the established steady-state picture. Our results play a pivotal role in understanding quantum light-matter interactions at short time scales. These findings demonstrate a fundamental active node to construct future large-scale hybrid quantum networks.
Publishing Year
Journal Title
arXiv:1808.05921
LibreCat-ID

Cite this

Schweickert L, Jöns KD, Namazi M, et al. Electromagnetically Induced Transparency of On-demand Single Photons in  a Hybrid Quantum Network. arXiv:180805921. Published online 2018.
Schweickert, L., Jöns, K. D., Namazi, M., Cui, G., Lettner, T., Zeuner, K. D., Montaña, L. S., Silva, S. F. C. da, Reindl, M., Huang, H., Trotta, R., Rastelli, A., Zwiller, V., & Figueroa, E. (2018). Electromagnetically Induced Transparency of On-demand Single Photons in  a Hybrid Quantum Network. In arXiv:1808.05921.
@article{Schweickert_Jöns_Namazi_Cui_Lettner_Zeuner_Montaña_Silva_Reindl_Huang_et al._2018, title={Electromagnetically Induced Transparency of On-demand Single Photons in  a Hybrid Quantum Network}, journal={arXiv:1808.05921}, author={Schweickert, Lucas and Jöns, Klaus D. and Namazi, Mehdi and Cui, Guodong and Lettner, Thomas and Zeuner, Katharina D. and Montaña, Lara Scavuzzo and Silva, Saimon Filipe Covre da and Reindl, Marcus and Huang, Huiying and et al.}, year={2018} }
Schweickert, Lucas, Klaus D. Jöns, Mehdi Namazi, Guodong Cui, Thomas Lettner, Katharina D. Zeuner, Lara Scavuzzo Montaña, et al. “Electromagnetically Induced Transparency of On-Demand Single Photons in  a Hybrid Quantum Network.” ArXiv:1808.05921, 2018.
L. Schweickert et al., “Electromagnetically Induced Transparency of On-demand Single Photons in  a Hybrid Quantum Network,” arXiv:1808.05921. 2018.
Schweickert, Lucas, et al. “Electromagnetically Induced Transparency of On-Demand Single Photons in  a Hybrid Quantum Network.” ArXiv:1808.05921, 2018.

Export

Marked Publications

Open Data LibreCat

Sources

arXiv 1808.05921

Search this title in

Google Scholar