Michał Karpiński, PhD
Michał Karpiński, PhD
Bio
After receiving his PhD at the Faculty of Physics of the University of Warsaw in 2012, he held an Individual Marie Curie Fellowship at the University of Oxford and works on optical quantum technologies. He now holds an adjunct (assistant professor) position at the Faculty of Physics, University of Warsaw, heading the Quantum Photonics Laboratory.
He conducted the first demonstration of a deterministic time lens for quantum light pulses and has a strong experience in experimental quantum state and process tomography. As of 2020, he is leading the Foundation for Polish Science First TEAM project on “Phase-only shaping of light pulse for applications in quantum technologies” and the Warsaw workgroup within the international EU-funded QuantERA project QuICHE (Quantum information & communication with high-dimensional encoding). Michał Karpiński is also co-ordinating the Quantum Technology Labs workgroup within the NLPQT project infrastructural project (nlpqt.fuw.edu.pl).
Location
University of Warsaw, Division of Optics
Pasteura 5, building A
Room: 3.40
Projects
- Coherent spectral manipulation of quantum states of light
- Manipulating spectral entanglement by complex temporal phase modulation
- Phase-only shaping of light pulses for applications in quantum technologies
- Polish Photonics Leaders
- QuICHE - Quantum Information and Communication with High-dimensional Encoding
Papers
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2023 Nature Photonics
Interface between picosecond and nanosecond quantum light pulses
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2023 Journal of Lightwave Technology
Precise on-chip spectral and temporal control of single-photon-level optical pulses
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2023 SPIE, Proc.vol 12488
Investigating the use of polarization maintaning FBG sensors for GW-based SHG
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2023 Laser Science
Characterization of energy-time entangled photon pairs by time resolvet detection
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2022 Physical Review Letters 129, 123605
Electro-optic Fourier transform chronometry of pulsed quantum light
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2022 Arxiv
Aberration-corrected time aperture of an electro-optic time lens
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2021 Advanced Quantum Technologies 4, 2000150
Control and Measurement of Quantum Light Pulses for Quantum Information Science and Technology
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2021 Smart Mater. Struct. 30, 125011
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2020 Applied Physics Letters 116, 234003
Aperiodic electro-optic time lens for spectral manipulation of single-photon pulses
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2020 Phys. Review Applied 14, 014052
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2020 Sensors. 20(20)
A Two-Step Guided Waves Based Damage Localization Technique Using Optical Fiber Sensors
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2019 Nature Photonics 13, 306
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2018 J. Mod. Opt., 10.1080/09500340.2018.144480
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2018 J. Mod. Opt. 65, 262-267
Measurement of radio-frequency temporal phase modulation using spectral interferometry
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2018 Optics Express 26, 31307-31316
Large-scale spectral bandwidth compression by complex electro-optic temporal phase modulation
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2018 PHYSICAL REVIEW LETTERS 121, 083602
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2018 PHYSICAL REVIEW A 98, 023840
Experimental single-photon pulse characterization by electro-optic shearing interferometry
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2018 PHYSICAL REVIEW A 98, 023836
Entanglement swapping for generation of heralded time-frequency-entangled photon pairs
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2018 J. Mod. Opt. 65, 262-267
Measurement of radio-frequency temporal phase modulation using spectral interferometry
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2017 Nature Photon. 11, 53-57
Bandwidth manipulation of quantum light by an electro-optic time lens
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2017 Opt. Express 25, 12804-12811
Pulsed single-photon spectrograph by frequency-to-time mapping using chirped fiber Bragg gratings
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2017 Phys. Rev. Lett. 118, 023601
Spectral shearing of quantum light pulses by electro-optic phase modulation
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2015 Optics Express 23, 10.1364/OE.23.033087
Scheme for on-chip verification of transverse mode entanglement using the electro-optic effect
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2015 Phys.Rev. A 91, 033824
Generation of higher-dimensional modal entanglement using a three-waveguide directional coupler
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2014 Opt. Express 22, 8624-8632
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2013 Nature Commun. 4, 2594
Quantum mechanical which-way experiment with an internal degree of freedom
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2013 Laser Phys. 23, 025204
Experimental generation of complex noisy photonic entanglement
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2012 Proc. SPIE 8518, 85180J
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2012 Opt. Lett. 37, 878–880
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2012 Optics Letters 37, 878-880
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2012 Proc. SPIE 8518, 1-5
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2011 Opt. Express 19, 10351–10358
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2011 Phys. Rev. Lett. 106, 030501
Experimental Extraction of Secure Correlations from a Noisy Private State
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2010 Opt. Commun. 283, 713–718
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2009 Appl. Phys. Lett. 94, 181105
Experimental characterization of three-wave mixing in a multimode nonlinear KTiOPO4 waveguide
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2008 J. Opt. Soc. Am. B 24, 668–673
Fiber-optic realization of anisotropic depolarizing quantum channels