Faculty profile
Marek Korkusinski
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Research
Latest papers
Valley-spin polarization at zero magnetic field induced by strong hole-hole interactions in monolayer WSe2.
Science advances · 2025
Bidirectional nuclear polarization through electric dipole spin resonance enabled by spin-orbit interaction in a single hole planar quantum dot device.
NPJ quantum information · 2025
Spontaneous Spin and Valley Symmetry-Broken States of Interacting Massive Dirac Fermions in a Bilayer Graphene Quantum Dot.
Nano letters · 2023 · first author
Latest funding
- $1,000,000
Quantum dot photonics for large-scale entanglement generation
NSERC · 2023 · Co-investigator
- $198,000
Atomistic engineering of semiconductor nanostructures for quantum information
NSERC · 2019 · Principal investigator
- $12,500
Atomistic engineering of semiconductor nanostructures for quantum information
NSERC · 2019 · Principal investigator
20 publications.
Valley-spin polarization at zero magnetic field induced by strong hole-hole interactions in monolayer WSe2.
Boddison-Chouinard J, Korkusinski M, Bogan A, Barrios P, Waldron P, Watanabe K, Taniguchi T, Pawłowski J, Miravet D, Hawrylak P, Luican-Mayer A, Gaudreau L
Bidirectional nuclear polarization through electric dipole spin resonance enabled by spin-orbit interaction in a single hole planar quantum dot device.
Studenikin S, Ducatel J, Ellis O, Korkusinski M, Bogan A, Zawadzki P, Austing DG, Sachrajda A
Spontaneous Spin and Valley Symmetry-Broken States of Interacting Massive Dirac Fermions in a Bilayer Graphene Quantum Dot.
Korkusinski M, Saleem Y, Dusko A, Miravet D, Hawrylak P
Majorana Excitons in a Kitaev Chain of Semiconductor Quantum Dots in a Nanowire.
Mohseni M, Allami H, Miravet D, Gayowsky DJ, Korkusinski M, Hawrylak P
Theory of Excitons in Gated Bilayer Graphene Quantum Dots.
Saleem Y, Sadecka K, Korkusinski M, Miravet D, Dusko A, Hawrylak P
Coherence Characteristics of a GaAs Single Heavy-Hole Spin Qubit Using a Modified Single-Shot Latching Readout Technique.
Marton V, Sachrajda A, Korkusinski M, Bogan A, Studenikin S
Edge States and Strain-Driven Topological Phase Transitions in Quantum Dots in Topological Insulators.
Puzantian B, Saleem Y, Korkusinski M, Hawrylak P
Unity yield of deterministically positioned quantum dot single photon sources.
Laferrière P, Yeung E, Miron I, Northeast DB, Haffouz S, Lapointe J, Korkusinski M, Poole PJ, Williams RL, Dalacu D
Magnetic tuning of tunnel coupling between InAsP double quantum dots in InP nanowires.
Phoenix J, Korkusinski M, Dalacu D, Poole PJ, Zawadzki P, Studenikin S, Williams RL, Sachrajda AS, Gaudreau L
Full polarization control of fiber-delivered light in a dilution refrigerator.
Phoenix J, Gaudreau L, Korkusinski M, Zawadzki P, Bogan A, Studenikin S, Williams RL, Sachrajda AS
Quantum dot photonics for large-scale entanglement generation
Principal investigators: Rotenberg, Nir N
Keywords: cluster states; entanglement generation; photonic engineering; quantum communication; quantum devices; quantum dots; quantum photonics; solid-state quantum emitters
Atomistic engineering of semiconductor nanostructures for quantum information
Principal investigators: Korkusinski, Marek
Keywords: semiconductor quantum dots; semiconductor quantum wires; electronic and optical properties; tight-bindng model; tight-binding density-functional approach; materials for quantum information and communication; photon to spin interface; two-dimensional materials
Atomistic engineering of semiconductor nanostructures for quantum information
Principal investigators: Korkusinski, Marek
From CIHR, NSERC and SSHRC funding decisions: CIHR since 2008, NSERC since 1991 and SSHRC since 1998, including their latest published competition results.
Frequent collaborators
- Marek Korkusinski and Dan Dalacu: 3 shared papers
- Sergei Studenikin and Marek Korkusinski: 1 shared paper
- Sergei Studenikin and Dan Dalacu: 1 shared paper
- Quantum Theory Group, Security and Disruptive Technologies
- Physics
- Security and Disruptive Technologies
Co-authors at University of Ottawa, colored by department. Thicker lines mean more shared papers; select anyone to open their profile and their own map.
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