DOAJ Open Access 2019

Quantum Interference of Electromechanically Stabilized Emitters in Nanophotonic Devices

B. Machielse S. Bogdanovic S. Meesala S. Gauthier M. J. Burek +13 lainnya

Abstrak

Photon-mediated coupling between distant matter qubits may enable secure communication over long distances, the implementation of distributed quantum computing schemes, and the exploration of new regimes of many-body quantum dynamics. Solid-state quantum emitters coupled to nanophotonic devices represent a promising approach towards these goals, as they combine strong light-matter interaction and high photon collection efficiencies. However, nanostructured environments introduce mismatch and diffusion in optical transition frequencies of emitters, making reliable photon-mediated entanglement generation infeasible. Here we address this long-standing challenge by employing silicon-vacancy color centers embedded in electromechanically deflectable nanophotonic waveguides. This electromechanical strain control enables control and stabilization of optical resonance between two silicon-vacancy centers on the hour timescale. Using this platform, we observe the signature of an entangled, superradiant state arising from quantum interference between two spatially separated emitters in a waveguide. This demonstration and the developed platform constitute a crucial step towards a scalable quantum network with solid-state quantum emitters.

Topik & Kata Kunci

Penulis (18)

B

B. Machielse

S

S. Bogdanovic

S

S. Meesala

S

S. Gauthier

M

M. J. Burek

G

G. Joe

M

M. Chalupnik

Y

Y. I. Sohn

J

J. Holzgrafe

R

R. E. Evans

C

C. Chia

H

H. Atikian

M

M. K. Bhaskar

D

D. D. Sukachev

L

L. Shao

S

S. Maity

M

M. D. Lukin

M

M. Lončar

Format Sitasi

Machielse, B., Bogdanovic, S., Meesala, S., Gauthier, S., Burek, M.J., Joe, G. et al. (2019). Quantum Interference of Electromechanically Stabilized Emitters in Nanophotonic Devices. https://doi.org/10.1103/PhysRevX.9.031022

Akses Cepat

PDF tidak tersedia langsung

Cek di sumber asli →
Lihat di Sumber doi.org/10.1103/PhysRevX.9.031022
Informasi Jurnal
Tahun Terbit
2019
Sumber Database
DOAJ
DOI
10.1103/PhysRevX.9.031022
Akses
Open Access ✓