
Overview
Background
Dr Joel Corney’s research interests are in the fields of quantum physics, ultracold gases, and optics.
He completed his PhD at The University of Queensland in 2000.
His chief research projects are in the areas of: Bose-Einstein Condensation, Quantum Phase-Space Simulation Techniques, Quantum Effects in Optical Fibres, and Nonlinear Optics
Availability
- Dr Joel Corney is:
- Available for supervision
- Media expert
Fields of research
Qualifications
- Bachelor (Honours) of Science (Advanced), The University of Queensland
- Doctor of Philosophy, The University of Queensland
Research interests
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Quantum chaos and thermalisation
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Quantum and nonlinear optics
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Ultracold Atoms
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Stochastic simulation methods
Works
Search Professor Joel Corney’s works on UQ eSpace
2002
Journal Article
Plane waves in periodic, quadratically nonlinear slab waveguides: stability and exact Fourier structure
Corney, J. F. and Bang, O. (2002). Plane waves in periodic, quadratically nonlinear slab waveguides: stability and exact Fourier structure. Journal of The Optical Society of America B: Optical Physics, 19 (4), 812-821. doi: 10.1364/JOSAB.19.000812
2002
Conference Publication
Complete description of all modulational instability gain bands generated by nonlinear QPM gratings
Bang, Ole and Corney, Joel F. (2002). Complete description of all modulational instability gain bands generated by nonlinear QPM gratings. Optica Publishing Group (formerly OSA).
2002
Conference Publication
Modulational-instability gain bands in quasi-phase-matched materials
Corney, J. F. and Bang, O. (2002). Modulational-instability gain bands in quasi-phase-matched materials. Australian Institute of Physics 15th Biennial Congress 2002, Sydney, 8-11 July, 2002. Adelaide, SA, Australia: Australian Institute or Physics.
2001
Journal Article
Solitons in quadratic nonlinear photonic crystals
Corney, J. F. and Bang, O. (2001). Solitons in quadratic nonlinear photonic crystals. Physical Review E, 64 (4), 047601-1-047601-4. doi: 10.1103/PhysRevE.64.047601
2001
Journal Article
Modulational Instability in Periodic Quadratic Nonlinear Materials
Corney, Joel F. and Bang, Ole (2001). Modulational Instability in Periodic Quadratic Nonlinear Materials. Physical Review Letters, 87 (13) 133901, 133901-1-133901-4. doi: 10.1103/PhysRevLett.87.133901
2001
Journal Article
Quantum noise in optical fibers. I. Stochastic equations
Drummond, P. D. and Corney, J. F. (2001). Quantum noise in optical fibers. I. Stochastic equations. Journal of the Optical Society of America B, 18 (2), 139-152. doi: 10.1364/JOSAB.18.000139
2001
Journal Article
Asymmetric induced cubic nonlinearities in homogeneous and quasi-phase-matched quadratic materials: Signature and importance
Bang, Ole and Corney, Joel F. (2001). Asymmetric induced cubic nonlinearities in homogeneous and quasi-phase-matched quadratic materials: Signature and importance. Optics and Photonics News, 12 (12), 42. doi: 10.1364/OPN.12.12.000042
2001
Journal Article
Accurate switching intensities and length scales in quasi-phase-matched materials
Bang, O., Graversen, T. W. and Corney, J. F. (2001). Accurate switching intensities and length scales in quasi-phase-matched materials. Optics Letters, 26 (13), 1007-1009. doi: 10.1364/OL.26.001007
2001
Journal Article
Quantum criticality
Drummond, P. D., Chaturvedi, S., Dechoum, K. and Corney, J. (2001). Quantum criticality. Zeitschrift Fur Naturforschung Section A-a Journal of Physical Sciences, 56 (1), 133-139. doi: 10.1515/zna-2001-0120
2001
Journal Article
Quantum noise in optical fibers. II. Raman jitter in soliton communications
Corney, J. F. and Drummond, P. D. (2001). Quantum noise in optical fibers. II. Raman jitter in soliton communications. Journal of The Optical Society of America B: Optical Physics, 18 (2), 153-161. doi: 10.1364/JOSAB.18.000153
2000
Journal Article
Spatial solitons in nonlinear photonic crystals
Corney, J. F. and Bang, O. (2000). Spatial solitons in nonlinear photonic crystals. IEEE Nonlinear Optics: Materials, Fundamentals and Applications - Conference Proceedings, 122-124.
2000
Journal Article
Modulational stability and dark solitons in periodic quadratic nonlinear media
Corney, J. F. and Bang, O. (2000). Modulational stability and dark solitons in periodic quadratic nonlinear media. IEEE Nonlinear Optics: Materials, Fundamentals and Applications - Conference Proceedings, 362-364.
2000
Conference Publication
Modulational stability and dark solitons in periodic quadratic nonlinear media
Corney, JF and Bang, O (2000). Modulational stability and dark solitons in periodic quadratic nonlinear media. Conference on Nonlinear Optics: Materials, Fundamentals, and Applications, Technical Digest, Kaua I-Lihue Hi, Aug 06-10, 2000. WASHINGTON: OPTICAL SOC AMERICA. doi: 10.1109/NLO.2000.883676
2000
Conference Publication
Spatial solitons in nonlinear photonic crystals
Corney, JF and Bang, O (2000). Spatial solitons in nonlinear photonic crystals. Conference on Nonlinear Optics: Materials, Fundamentals, and Applications, Technical Digest, Kaua I-Lihue Hi, Aug 06-10, 2000. WASHINGTON: OPTICAL SOC AMERICA. doi: 10.1109/NLO.2000.883597
1999
Other Outputs
Open quantum dynamics of mesoscopic Bose-Einstein condensates
Corney, Joel Frederick (1999). Open quantum dynamics of mesoscopic Bose-Einstein condensates. PhD Thesis, Department of Physics, The University of Queensland. doi: 10.14264/157955
1999
Journal Article
Quantum dynamics and coherence properties of evaporatively cooled Bose-Einstein condensates
Drummond, P. D. and Corney, J. F. (1999). Quantum dynamics and coherence properties of evaporatively cooled Bose-Einstein condensates. IQEC, International Quantum Electronics Conference Proceedings, 38-39.
1999
Journal Article
Quantum dynamics of evaporatively cooled Bose-Einstein condensates
Drummond, P. D. and Corney, J. F. (1999). Quantum dynamics of evaporatively cooled Bose-Einstein condensates. Physical Review A, 60 (4), R2661-R2664. doi: 10.1103/PhysRevA.60.R2661
1999
Conference Publication
Quantum dynamics and coherence properties of evaporatively cooled Bose-Einstein condensates
Drummond, P. D. and Corney, J. (1999). Quantum dynamics and coherence properties of evaporatively cooled Bose-Einstein condensates. Quantum Electronics and Laser Science Conference 1999, Baltimore, USA, 23-28 May, 1999. USA: Optical Society of America, American Physical Society. doi: 10.1109/qels.1999.807139
1999
Journal Article
Weak-force detection using a double Bose-Einstein condensate
Corney, J. F., Milburn, G. J. and Zhang, Weiping (1999). Weak-force detection using a double Bose-Einstein condensate. Physical Review A, 59 (6), 4630-4635. doi: 10.1103/PhysRevA.59.4630
1999
Other Outputs
Weak Force Detection Using a Double Bose-Einstein Condensate
Corney, J. F., Milburn, Gerard J. and Zhang, Weiping (1999). Weak Force Detection Using a Double Bose-Einstein Condensate.
Funding
Past funding
Supervision
Availability
- Dr Joel Corney is:
- Available for supervision
Before you email them, read our advice on how to contact a supervisor.
Available projects
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Controlled chaos in ultra cold matter systems
Utracold atoms in optical lattices provide an elegant, reconfigurable arena for exploring many-body quantum physics in a precisely controlled way. In particular they can be used to probe how the features of dynamical chaos (a classical phenomenon of nonlinear systems) survive in the quantum regime. This project will map out the phase-space of novel lattice systems (with enough degrees of freedom to show chaos in the classical limit, yet small enough such that a quantum description is tractable) and map chaotic features onto the Wigner distribution of the corresponding quantum state. A key goal will be to understand the role of apparent chaotic behaviour in the thermalisation of isolated quantum systems. The project will involve a combination of analytic and computational work. Prior computational experience (in any language) would be an advantage.
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Quantum Squeezing via Self-Induced Transparency
Optical fibres offer a versatile medium for squeezing the quantum state of light for application in quantum information and communication, and precision metrology. However, the amount and quality of squeezing is limited by interactions with vibrational modes in the silica. A promising alternative is microstructured fibre with a gas-filled hollow core [1]. Here a strong nonlinear response can be provided via self-induced trans- parency, wherein an intense pulse of light is coherently absorbed and then emitted without loss, resulting in the kind of intensity-dependent phase shift required for squeezing.
In this project, you will develop and implement a realistic computational model of resonant atom-light interaction in this system, including coupling to relevant reservoirs, to make accurate predictions of the amount of squeezing possible. A key aspect of the work is to adapt the quantum noise techniques previously used to successfully predict squeezing in dispersive media [2] to resonant interactions. The results will play a vital role in guiding current and future experiments in quantum squeezing with microstruc- tured fibre.
[1] Ulrich Vogl, Florian Sedlmeir, Nicolas Y Joly, Christoph Marquardt, and Gerd Leuchs. Generation of non-classical light via self-induced transparency in mercury- filled hollow core photonic crystal fibers. In Frontiers in Optics 2016, 2016.
[2] Joel F Corney, Joel Heersink, Ruifang Dong, Vincent Josse, Peter D Drummond, Gerd Leuchs, and Ulrik L Andersen. Simulations and experiments on polarization squeezing in optical fiber. Phys. Rev. A, 78(2):23831, 2008.
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Photons in the Fermi sea
Novel “epsilon-near-zero” materials, where the electric permittivity vanishes at certain wavelengths, have recently been demonstrated to have very high nonlinear optical response [1], i.e. these materials enable photons effectively to interact with each other. These interactions could be be used to manipulate the intrinsic quantum fluctuations in the light - an effect known as quantum squeezing. Quantum squeezing has applications in precision measurement, quantum information and quantum communication.
This project will analyse the interaction between photons and degenerate electrons at the quantum level (existing theory so far has just focussed on the classical response), to produce quantitative predictions of the quantum squeezing available in such materials.
The project will involve a combination of analytic and computational work. Prior computational experience (in any language) would be an advantage. During the project you will have the opportunity to learn the basics of stochastic calculus and how to implement stochastic processes numerically.
[1] Alam, M. Zahirul, Sebastian A. Schulz, Jeremy Upham, Israel De Leon, and Robert W. Boyd. “Large Optical Nonlinearity of Nanoantennas Coupled to an Epsilon-near-Zero Material” Nature Photonics 12, no. 2 (2018): 79–83. https://doi.org/10.1038/s41566-017-0089-9
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Squeezing in whispering-gallery-mode resonators
Nonlinear effects in an optical material can be enhanced through a long interaction length (like an optical fibre) or by use of an optical cavity/resonator (whereby each photon is reflected back through the medium many times before emerging through the mirror).
Optical resonators formed from microspheres or microdisks support high-quality whispering gallery modes, in which the incoupled light circulates many times in a highly confined space. This project will investigate the use of whispering-gallery-modes for quantum squeezing, calculating the squeezing spectrum that different configurations can generate.
The project will involve a combination of analytic and computational work. Prior computational experience (in any language) would be an advantage. During the project you will have the opportunity to learn the basics of stochastic calculus and how to implement stochastic processes numerically.
Supervision history
Current supervision
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Doctor Philosophy
Quantum Squeezing via Self-Induced Transparency in Optical Fibres
Principal Advisor
Other advisors: Professor Karen Kheruntsyan
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Doctor Philosophy
Adaptive explicitly-correlated Gaussian basis functions for time-dependent quantum systems
Associate Advisor
Completed supervision
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2024
Master Philosophy
Development of a novel scheme for practical Sagnac interferometry with Bose-Einstein condensates
Principal Advisor
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2018
Doctor Philosophy
Non-Classical States in Ultra-Cold Atoms for Robust, High Precision Metrology
Principal Advisor
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2020
Doctor Philosophy
Superfluid critical velocity in dilute gas Bose-Einstein condensates
Associate Advisor
Other advisors: Professor Matthew Davis
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2015
Doctor Philosophy
Ultracold atoms for foundational tests of quantum mechanics
Associate Advisor
Other advisors: Professor Karen Kheruntsyan, Professor Matthew Davis
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2012
Doctor Philosophy
Physics of Low-Dimensional Ultracold Bose Gases
Associate Advisor
Other advisors: Professor Matthew Davis
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2011
Doctor Philosophy
Quantum-Atom Optics and Dynamical Simulations of Fermionic Many-Body Systems
Associate Advisor
Other advisors: Professor Karen Kheruntsyan, Professor Matthew Davis
Media
Enquiries
Contact Dr Joel Corney directly for media enquiries about:
- Atom optics - quantum
- Optical fibre - quantum effects
- Physics - quantum
- Quantum atom optics
- Quantum effects in optical fibre
- Quantum physics
- Quantum simulation methods
- Ultra cold gases - physics
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