We demonstrate a source of correlated photon pairs which will have applications in future integrated quantum photonic circuits. The source utilizes spontaneous four-wave mixing (SFWM) in a dispersion-engineered nanowaveguide made of AlGaAs, which has merits of negligible two-photon absorption and low spontaneous Raman scattering (SpRS). We observe a coincidence-to-accidental (CAR) ratio up to 177, mainly limited by propagation losses. Experimental results agree well with theoretical predictions of the SFWM photon pair generation and the SpRS noise photon generation. We also study the effects from the SpRS, propagation losses, and waveguide lengths on the quality of our source
In this thesis, I overcome the challenges and fill the gaps in knowledge for the design and analysis...
We obtained a source of entangled photon pairs in the 1550-nm wavelength band using spontaneous four...
We examine time-domain instabilities in short chains of coupled Kerr-nonlinear resonators. We show t...
We demonstrate a source of correlated photon pairs which will have applications in future integrated...
We report on the generation of correlated photon pairs in AlGaAs-on-insulator (AlGaAs-OI) waveguides...
We generate 1550 nm correlated photon pairs through the spontaneous four-wave mixing (SpFWM) process...
We study, both theoretically and experimentally, emission of correlated photon-pairs by spontaneous ...
In this work, we propose and theoretically analyze a new scheme for generation of counterpropagating...
We theoretically investigate the generation of quantum-correlated photon pairs through spontaneous f...
Optical nanoantennas have shown a great capacity for efficient extraction of photons from the near t...
We demonstrate the first 1550 nm correlated photon-pair source in an integrated glass platform-a ch...
We report an integrated photon pair source based on a CMOS-compatible microring resonator that gener...
Integrated quantum photonics relies critically on the purity, scalability, integrability, and flexib...
A fiber-based photon-pair source in the telecom C-band is suitable for quantum information science i...
We demonstrate degenerate, correlated photon-pair generation via slow-light-enhanced spontaneous fou...
In this thesis, I overcome the challenges and fill the gaps in knowledge for the design and analysis...
We obtained a source of entangled photon pairs in the 1550-nm wavelength band using spontaneous four...
We examine time-domain instabilities in short chains of coupled Kerr-nonlinear resonators. We show t...
We demonstrate a source of correlated photon pairs which will have applications in future integrated...
We report on the generation of correlated photon pairs in AlGaAs-on-insulator (AlGaAs-OI) waveguides...
We generate 1550 nm correlated photon pairs through the spontaneous four-wave mixing (SpFWM) process...
We study, both theoretically and experimentally, emission of correlated photon-pairs by spontaneous ...
In this work, we propose and theoretically analyze a new scheme for generation of counterpropagating...
We theoretically investigate the generation of quantum-correlated photon pairs through spontaneous f...
Optical nanoantennas have shown a great capacity for efficient extraction of photons from the near t...
We demonstrate the first 1550 nm correlated photon-pair source in an integrated glass platform-a ch...
We report an integrated photon pair source based on a CMOS-compatible microring resonator that gener...
Integrated quantum photonics relies critically on the purity, scalability, integrability, and flexib...
A fiber-based photon-pair source in the telecom C-band is suitable for quantum information science i...
We demonstrate degenerate, correlated photon-pair generation via slow-light-enhanced spontaneous fou...
In this thesis, I overcome the challenges and fill the gaps in knowledge for the design and analysis...
We obtained a source of entangled photon pairs in the 1550-nm wavelength band using spontaneous four...
We examine time-domain instabilities in short chains of coupled Kerr-nonlinear resonators. We show t...