| Literature DB >> 28949594 |
Yu He1,2, Yu-Ming He1,2, Yu-Jia Wei1,2, Xiao Jiang1,2, Kai Chen1,2, Chao-Yang Lu1,2, Jian-Wei Pan1,2, Christian Schneider3, Martin Kamp3, Sven Höfling3,4.
Abstract
Quantum state transfer from flying photons to stationary matter qubits is an important element in the realization of quantum networks. Self-assembled semiconductor quantum dots provide a promising solid-state platform hosting both single photon and spin, with an inherent light-matter interface. Here, we develop a method to coherently and actively control the single-photon frequency bins in superposition using electro-optic modulators, and measure the spin-photon entanglement with a fidelity of 0.796±0.020. Further, by Greenberger-Horne-Zeilinger-type state projection on the frequency, path, and polarization degrees of freedom of a single photon, we demonstrate quantum state transfer from a single photon to a single electron spin confined in an InGaAs quantum dot, separated by 5 m. The quantum state mapping from the photon's polarization to the electron's spin is demonstrated along three different axes on the Bloch sphere, with an average fidelity of 78.5%.Entities:
Year: 2017 PMID: 28949594 DOI: 10.1103/PhysRevLett.119.060501
Source DB: PubMed Journal: Phys Rev Lett ISSN: 0031-9007 Impact factor: 9.161