Details
Original language | English |
---|---|
Title of host publication | Frontiers in Optics + Laser Science 2024 |
Subtitle of host publication | FiO, LS |
Publisher | Optica Publishing Group (formerly OSA) |
Number of pages | 2 |
ISBN (print) | 978-1-957171-95-1 |
Publication status | Published - 23 Sept 2024 |
Event | 2024 Frontiers in Optics, FiO 2024 - Denver, United States Duration: 23 Sept 2024 → 26 Sept 2024 |
Abstract
Co-transmission of coherent signals and frequency-entangled photons over a single frequency channel is experimentally demonstrated via the serrodyne technique. Our approach preserves entanglement and paves the way towards scalable and efficient hybrid quantum coherent networks.
ASJC Scopus subject areas
- Engineering(all)
- Control and Systems Engineering
- Materials Science(all)
- Electronic, Optical and Magnetic Materials
- Physics and Astronomy(all)
- Instrumentation
- Computer Science(all)
- General Computer Science
- Earth and Planetary Sciences(all)
- Space and Planetary Science
- Engineering(all)
- Electrical and Electronic Engineering
- Physics and Astronomy(all)
- Atomic and Molecular Physics, and Optics
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Frontiers in Optics + Laser Science 2024 : FiO, LS. Optica Publishing Group (formerly OSA), 2024. FM5C.6.
Research output: Chapter in book/report/conference proceeding › Conference contribution › Research › peer review
}
TY - GEN
T1 - Co-transmission of quantum and coherent signals on a single frequency channel via the serrodyne technique
AU - Rübeling, Philip
AU - Heine, Jan
AU - Johanning, Robert
AU - Kues, Michael
N1 - Publisher Copyright: © Optica Publishing Group 2024, © 2024 The Author(s)
PY - 2024/9/23
Y1 - 2024/9/23
N2 - Co-transmission of coherent signals and frequency-entangled photons over a single frequency channel is experimentally demonstrated via the serrodyne technique. Our approach preserves entanglement and paves the way towards scalable and efficient hybrid quantum coherent networks.
AB - Co-transmission of coherent signals and frequency-entangled photons over a single frequency channel is experimentally demonstrated via the serrodyne technique. Our approach preserves entanglement and paves the way towards scalable and efficient hybrid quantum coherent networks.
UR - http://www.scopus.com/inward/record.url?scp=85215979596&partnerID=8YFLogxK
U2 - 10.1364/FIO.2024.FM5C.6
DO - 10.1364/FIO.2024.FM5C.6
M3 - Conference contribution
AN - SCOPUS:85215979596
SN - 978-1-957171-95-1
BT - Frontiers in Optics + Laser Science 2024
PB - Optica Publishing Group (formerly OSA)
T2 - 2024 Frontiers in Optics, FiO 2024
Y2 - 23 September 2024 through 26 September 2024
ER -