B. Piętka
University of Warsaw
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Featured researches published by B. Piętka.
Physical Review Letters | 2011
Konstantinos G. Lagoudakis; Francesco Manni; B. Piętka; M. Wouters; Timothy Chi Hin Liew; Vincenzo Savona; Alexey Kavokin; R. André; Benoit Deveaud-Plédran
The experimental investigation of spontaneously created vortices is of utmost importance for the understanding of quantum phase transitions towards a superfluid phase, especially for two-dimensional systems that are expected to be governed by the Berezinski-Kosterlitz-Thouless physics. By means of time-resolved near-field interferometry we track the path of such vortices, created at random locations in an exciton-polariton condensate under pulsed nonresonant excitation, to their final pinning positions imposed by the stationary disorder. We formulate a theoretical model that successfully reproduces the experimental observations.
Physical Review Letters | 2011
Francesco Manni; Konstantinos G. Lagoudakis; B. Piętka; Luca Fontanesi; Michiel Wouters; Vincenzo Savona; R. André; Benoit Deveaud-Plédran
We study the coherence and density modulation of a nonequilibrium exciton-polariton condensate in a one-dimensional valley with disorder. By means of interferometric measurements we evidence a modulation of the first-order coherence function and we relate it to a disorder-induced modulation of the condensate density, that increases as the pump power is increased. The nonmonotonic spatial coherence function is found to be the result of the strong nonequilibrium character of the one-dimensional system, in the presence of disorder.
Physical Review B | 2015
B. Piętka; D. Zygmunt; M. Król; Maciej R. Molas; A. A. L. Nicolet; F. Morier-Genoud; Jacek Szczytko; J. Łusakowski; P. Zięba; Igor Tralle; Piotr Stępnicki; Michał Matuszewski; M. Potemski; B. Deveaud
We detail the influence of a magnetic field on exciton-polaritons inside a semiconductor microcavity. Magnetic field can be used as a tuning parameter for exciton and photon resonances. We discuss the change of the exciton energy, the oscillator strength, and redistribution of the polariton density along the dispersion curves due to the magnetically induced detuning. We have observed that field-induced shrinkage of the exciton wave function has a direct influence not only on the exciton oscillator strength, which is observed to increase with the magnetic field, but also on the polariton linewidth. We discuss the effect of the Zeeman splitting on polaritons the magnitude of which changes with the exciton Hopfield coefficient and can be modeled by independent coupling of the two spin components of excitons with cavity photons.
Applied Physics Letters | 2015
J.-G. Rousset; B. Piętka; M. Król; R. Mirek; K. Lekenta; Jacek Szczytko; Jolanta Borysiuk; J. Suffczyński; T. Kazimierczuk; M. Goryca; T. Smoleński; P. Kossacki; M. Nawrocki; W. Pacuski
We report on properties of an optical microcavity based on (Cd,Zn,Mg)Te layers and embedding (Cd,Zn)Te quantum wells. The key point of the structure design is the lattice matching of the whole structure to MgTe, which eliminates the internal strain and allows one to embed an arbitrary number of unstrained quantum wells in the microcavity. We evidence the strong light-matter coupling regime already for the structure containing a single quantum well. Embedding four unstrained quantum wells results in further enhancement of the exciton-photon coupling and the polariton lasing in the strong coupling regime.
Physical Review B | 2017
J.-G. Rousset; B. Piętka; M. Król; R. Mirek; K. Lekenta; Jacek Szczytko; W. Pacuski; M. Nawrocki
We evidence magnetic field triggered polariton lasing in a microcavity containing semimagnetic quantum wells. This effect is associated with a decrease of the polariton lasing threshold power in magnetic field. The observed magnetic field dependence of the threshold power systematically exhibits a minimum which only weakly depends on the zero-field photon-exciton detuning. These results are interpreted as a consequence of the polariton giant Zeeman splitting which in magnetic field: leads to a decrease of the number of accessible states in the lowest polariton branch by a factor of two, and substantially changes the photon-exciton detuning.
Physical Review B | 2017
B. Piętka; Maciej R. Molas; Nataliya Bobrovska; M. Król; R. Mirek; K. Lekenta; Piotr Stępnicki; F. Morier-Genoud; Jacek Szczytko; B. Deveaud; Michał Matuszewski; M. Potemski
We demonstrate the existence of the excited state of an exciton-polariton in a semiconductor microcavity. The strong coupling of the quantum well heavy-hole exciton in an excited 2s state to the cavity photon is observed in nonzero magnetic field due to surprisingly fast increase of Rabi energy of the 2s exciton-polariton in magnetic field. This effect is explained by a strong modification of the wave function of the relative electron-hole motion for the 2s exciton state.
Journal of Physics: Condensed Matter | 2016
Maciej R. Molas; A. A. L. Nicolet; B. Piętka; A. Babiński; M. Potemski
We report on spectroscopic studies of resonances related to ladder of states of a charged exciton in single GaAlAs/AlAs quantum dot structures. Polarization-resolved photoluminescence, photoluminescence excitation and photon-correlation measurements were performed at low (T = 4.2 K) temperature also in magnetic field applied in Faraday configuration. The investigated resonances are assigned to three different configurations of a positively charged exciton. Together with a singlet ground state and a conventional triplet state (involving an electron from the ground state electronic s-shell), an excited triplet state, which involved an electron from the excited electronic p-shell was identified in single dots. The appearance of an emission line related to the latter complex is due to a partially suppressed electron relaxation in the investigated dots. An analysis of this emission line allows us to scrupulously determine properties of the excited triplet state and compare them with those of the conventional triplet state. Both triplets exhibit similar patterns of anisotropic fine structure and Zeeman splitting, however their amplitudes significantly differ for those two states. Presented results emphasize the role of the symmetry of the electronic state on the properties of the triplet states of two holes + electron excitonic complex.
Scientific Reports | 2018
M. Król; R. Mirek; K. Lekenta; J.-G. Rousset; Daniel Stephan; M. Nawrocki; Michał Matuszewski; Jacek Szczytko; W. Pacuski; B. Piętka
Owing to their integer spin, exciton-polaritons in microcavities can be used for observation of non-equilibrium Bose-Einstein condensation in solid state. However, spin-related phenomena of such condensates are difficult to explore due to the relatively small Zeeman effect of standard semiconductor microcavity systems and the strong tendency to sustain an equal population of two spin components, which precludes the observation of condensates with a well defined spin projection along the axis of the system. The enhancement of the Zeeman splitting can be achieved by introducing magnetic ions to the quantum wells, and consequently forming semimagnetic polaritons. In this system, increasing magnetic field can induce polariton condensation at constant excitation power. Here we evidence the spin polarization of a semimagnetic polaritons condensate exhibiting a circularly polarized emission over 95% even in a moderate magnetic field of about 3 T. Furthermore, we show that unlike nonmagnetic polaritons, an increase on excitation power results in an increase of the semimagnetic polaritons condensate spin polarization. These properties open new possibilities for testing theoretically predicted phenomena of spin polarized condensate.
Physical Review Letters | 2017
B. Piętka; Nataliya Bobrovska; Daniel Stephan; M. Teich; M. Król; Stephan Winnerl; Alexej Pashkin; R. Mirek; K. Lekenta; F. Morier-Genoud; Harald Schneider; B. Deveaud; Manfred Helm; Michał Matuszewski; Jacek Szczytko
We demonstrate the existence of a novel quasiparticle, an exciton in a semiconductor doubly dressed with two photons of different wavelengths: a near infrared cavity photon and terahertz (THz) photon, with the THz coupling strength approaching the ultrastrong coupling regime. This quasiparticle is composed of three different bosons, being a mixture of a matter-light quasiparticle. Our observations are confirmed by a detailed theoretical analysis, treating quantum mechanically all three bosonic fields. The doubly dressed quasiparticles retain the bosonic nature of their constituents, but their internal quantum structure strongly depends on the intensity of the applied terahertz field.
Proceedings of SPIE | 2014
M. Białek; M. Marcinkiewicz; T. Tarkowski; J. Wróbel; V. Umansky; B. Piętka; J. Łusakowski
Terahertz detectors based on GaAs/AlGaAs heterostructure were investigated at low temperatures and high magnetic fields. A response of detectors showed a line caused by a cyclotron resonance transition which was accompanied by several peaks originated form excitation of magnetopasmons. Illumination with a visible light caused an increase of the plasma concentration and resulted in a change of the magnetoplasmon spectrum. An analysis of spectra allowed to determine changes in the plasmon dispersion relation with a visible light which gives a tool to tune a THz response of a plasmonic detector.