arXiv · 1606.07492
Deterministic Generation of a Cluster State of Entangled Photons
Abstract
We use semiconductor quantum dots, "artificial atoms," to implement a scheme for deterministic generation of long strings of entangled photons in a cluster state, an important resource for quantum information processing. We demonstrate a prototype device which produces strings of a few hundred photons in which the entanglement persists over 5 sequential photons. The implementation follows a proposal by Lindner and Rudolph (Phys. Rev. Lett. 2009) which suggested periodic timed excitation of a precessing electron spin as a mechanism for entangling the electron spin with the polarization of the sequentially emitted photons. In our realization, the entangling qubit is a quantum dot confined dark exciton. By performing full quantum process tomography, we obtain the process map which fully characterizes the evolution of the system, containing the dark exciton and n photons after n applications of the periodic excitations. Our implementation may greatly reduce the resources needed for quantum information processing.
Explore related subjects
Keep this discovery
Ido Schwartz, Dan Cogan, Emma R. Schmidgall, Yaroslav Don, Liron Gantz, Oded Kenneth, Netanel H. Lindner, David Gershoni. 2016-06-23. Deterministic Generation of a Cluster State of Entangled Photons. https://doi.org/10.1126/science.aah4758
Cite the original work for its findings. Save a collection to share your selection of sources.