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On-chip frequency combs and telecommunications signal processing meet quantum optics
- Publication Year :
- 2018
-
Abstract
- Entangled optical quantum states are essential towards solving questions in fundamental physics and are at the heart of applications in quantum information science. For advancing the research and development of quantum technologies, practical access to the generation and manipulation of photon states carrying significant quantum resources is required. Recently, integrated photonics has become a leading platform for the compact and cost-efficient generation and processing of optical quantum states. Despite significant advances, most on-chip nonclassical light sources are still limited to basic bi-photon systems formed by two-dimensional states (i.e., qubits). An interesting approach bearing large potential is the use of the time or frequency domain to enabled the scalable onchip generation of complex states. In this manuscript, we review recent efforts in using on-chip optical frequency combs for quantum state generation and telecommunications components for their coherent control. In particular, the generation of bi- and multi-photon entangled qubit states has been demonstrated, based on a discrete time domain approach. Moreover, the on-chip generation of high-dimensional entangled states (quDits) has recently been realized, wherein the photons are created in a coherent superposition of multiple pure frequency modes. The time- and frequency-domain states formed with on-chip frequency comb sources were coherently manipulated via off-the-shelf telecommunications components. Our results suggest that microcavity-based entangled photon states and their coherent control using accessible telecommunication infrastructures can open up new venues for scalable quantum information science.
- Subjects :
- Quantum optics
entangled photon
Computer science
business.industry
quantum optic
Electronic, Optical and Magnetic Material
Settore ING-INF/02 - Campi Elettromagnetici
01 natural sciences
Electronic, Optical and Magnetic Materials
010309 optics
Quantum technology
QC350
Coherent control
Quantum state
Qubit
nonlinear optic
0103 physical sciences
Nonclassical light
Electrical and Electronic Engineering
Photonics
010306 general physics
business
Quantum information science
Telecommunications
Subjects
Details
- Language :
- English
- ISSN :
- 20952767
- Database :
- OpenAIRE
- Accession number :
- edsair.doi.dedup.....d505159c622abd54e8823bb01d79ffb4