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Dive into the research topics where W. Pacuski is active.

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Featured researches published by W. Pacuski.


Physical Review B | 2006

Effect of the s , p − d exchange interaction on the excitons in Zn 1 − x Co x O epilayers

W. Pacuski; D. Ferrand; J. Cibert; C. Deparis; J. A. Gaj; P. Kossacki; C. Morhain

We present a spectroscopic study of ZnCoO layers grown by molecular beam epitaxy on sapphire substrates. ZnCoO is commonly considered as a promising candidate for being a Diluted Magnetic Semiconductor ferromagnetic at room temperature. We performed magneto-optical spectroscopy in the Faraday configuration, by applying a magnetic field up to 11T, at temperatures down to 1.5K. For very dilute samples (x<0.5%), the giant Zeeman splitting of the A and B excitons is observed at low temperature. It is proportional to the magnetization of isolated Co ions, as calculated using the anisotropy and g-factor deduced from the spectroscopy of the d-d transitions. This demonstrates the existence of spin-carrier coupling. Electron-hole exchange within the exciton has a strong effect on the giant Zeeman splitting observed on the excitons. From the effective spin-exciton coupling, =0.4eV, we estimate the difference of the exchange integrals for free carriers, N0 |alpha - beta|=0.8=eV. The magnetic circular dichroism observed near the energy gap was found to be proportional to the paramagnetic magnetization of anisotropic Co ions even for higher Co contents.


Nature Communications | 2014

Designing quantum dots for solotronics

J. Kobak; T. Smoleński; M. Goryca; M. Papaj; K. Gietka; A. Bogucki; M. Koperski; J.-G. Rousset; J. Suffczyński; E. Janik; M. Nawrocki; A. Golnik; P. Kossacki; W. Pacuski

Solotronics, optoelectronics based on solitary dopants, is an emerging field of research and technology reaching the ultimate limit of miniaturization. It aims at exploiting quantum properties of individual ions or defects embedded in a semiconductor matrix. It has already been shown that optical control of a magnetic ion spin is feasible using the carriers confined in a quantum dot. However, a serious obstacle was the quenching of the exciton luminescence by magnetic impurities. Here we show, by photoluminescence studies on thus-far-unexplored individual CdTe dots with a single cobalt ion and CdSe dots with a single manganese ion, that even if energetically allowed, nonradiative exciton recombination through single-magnetic-ion intra-ionic transitions is negligible in such zero-dimensional structures. This opens solotronics for a wide range of as yet unconsidered systems. On the basis of results of our single-spin relaxation experiments and on the material trends, we identify optimal magnetic-ion quantum dot systems for implementation of a single-ion-based spin memory.


Applied Physics Letters | 2009

High-reflectivity broadband distributed Bragg reflector lattice matched to ZnTe

W. Pacuski; C. Kruse; S. Figge; D. Hommel

We report on the realization of a high quality distributed Bragg reflector with both high and low refractive index layers lattice matched to ZnTe. Our structure is grown by molecular beam epitaxy and is based on binary compounds only. The high refractive index layer is made of ZnTe, while the low index material is made of a short period triple superlattice containing MgSe, MgTe, and ZnTe. The high refractive index step of Delta_n=0.5 in the structure results in a broad stopband and the reflectivity coefficient exceeding 99% for only 15 Bragg pairs.


Physical Review Letters | 2008

Observation of strong-coupling effects in a diluted magnetic semiconductor Ga1-xFexN.

W. Pacuski; P. Kossacki; D. Ferrand; A. Golnik; J. Cibert; M. Wegscheider; A. Navarro-Quezada; A. Bonanni; M. Kiecana; M. Sawicki; T. Dietl

The giant Zeeman splitting of free excitons is measured in Ga(1-x)Fe(x)N. Magneto-optical and magnetization data imply the ferromagnetic sign and a reduced magnitude of the effective p-d exchange energy governing the interaction between Fe(3+) ions and holes in GaN, N_{0}beta(app)=+0.5+/-0.2 eV. This finding corroborates the recent suggestion that the strong p-d hybridization specific to nitrides and oxides leads to significant renormalization of the valence band exchange splitting.


Physical Review Letters | 2009

Magnetization dynamics down to a zero field in dilute (Cd,Mn)Te quantum wells.

M. Goryca; D. Ferrand; P. Kossacki; M. Nawrocki; W. Pacuski; W. Maślana; J. A. Gaj; S. Tatarenko; J. Cibert; T. Wojtowicz; G. Karczewski

The evolution of the magnetization in (Cd,Mn)Te quantum wells after a short pulse of magnetic field was determined from the giant Zeeman shift of spectroscopic lines. The dynamics in the absence of a static magnetic field was found to be up to 3 orders of magnitude faster than that at 1 T. Hyperfine interaction and strain are mainly responsible for the fast decay. The influence of a hole gas is clearly visible: at zero field anisotropic holes stabilize the system of Mn ions, while in a magnetic field of 1 T they are known to speed up the decay by opening an additional relaxation channel.


Nature Communications | 2016

Magnetic ground state of an individual Fe 2+ ion in strained semiconductor nanostructure

T. Smoleński; T. Kazimierczuk; J. Kobak; M. Goryca; A. Golnik; P. Kossacki; W. Pacuski

Single impurities with nonzero spin and multiple ground states offer a degree of freedom that can be utilized to store the quantum information. However, Fe2+ dopant is known for having a single nondegenerate ground state in the bulk host semiconductors and thus is of little use for spintronic applications. Here we show that the well-established picture of Fe2+ spin configuration can be modified by subjecting the Fe2+ ion to high strain, for example, produced by lattice mismatched epitaxial nanostructures. Our analysis reveals that high strain induces qualitative change in the ion energy spectrum and results in nearly doubly degenerate ground state with spin projection Sz=±2. We provide an experimental proof of this concept using a new system: a strained epitaxial quantum dot containing individual Fe2+ ion. Magnetic character of the Fe2+ ground state in a CdSe/ZnSe dot is revealed in photoluminescence experiments by exploiting a coupling between a confined exciton and the single-iron impurity. We also demonstrate that the Fe2+ spin can be oriented by spin-polarized excitons, which opens a possibility of using it as an optically controllable two-level system free of nuclear spin fluctuations.


Applied Physics Letters | 2012

Pronounced Purcell enhancement of spontaneous emission in CdTe/ZnTe quantum dots embedded in micropillar cavities

Tomasz Jakubczyk; W. Pacuski; T. Smoleński; A. Golnik; Matthias Florian; F. Jahnke; Carsten Kruse; D. Hommel; P. Kossacki

The coupling of CdTe/ZnTe quantum dot(QD) emission to micropillar cavityeigenmodes in the weak coupling regime is demonstrated. We analyze photoluminescencespectra of QDs embedded in monolithic micropillar cavities based on Bragg mirrors which contain MgSe/ZnTe/MgTe superlattices as low-index material. The pillar emission shows pronounced cavityeigenmodes, and their spectral shape is in good agreement with simulations. QD emission in resonance with the cavity mode is shown to be efficiently guided toward the detector, and an experimental Purcell enhancement by a factor of 5.7 is determined, confirming theoretical expectations.


Nanotechnology | 2011

Monolithic ZnTe-based pillar microcavities containing CdTe quantum dots

Carsten Kruse; W. Pacuski; Tomasz Jakubczyk; J. Kobak; J. A. Gaj; Kristian Frank; Marco Schowalter; A. Rosenauer; Matthias Florian; F. Jahnke; D. Hommel

Micropillars of different diameters have been prepared by focused ion beam milling out of a planar ZnTe-based cavity. The monolithic epitaxial structure, deposited on a GaAs substrate, contains CdTe quantum dots embedded in a ZnTe λ-cavity delimited by two distributed Bragg reflectors (DBRs). The high refractive index material of the DBR structure is ZnTe, while for the low index material a short-period triple MgTe/ZnTe/MgSe superlattice is used. The CdTe quantum dots are formed by a novel Zn-induced formation process and are investigated by scanning transmission electron microscopy. Micro-photoluminescence measurements show discrete optical modes for the pillars, in good agreement with calculations based on a vectorial transfer matrix method. The measured quality factor reaches a value of 3100.


Physical Review B | 2007

Excitonic giant Zeeman effect in Ga N : Mn 3 +

W. Pacuski; D. Ferrand; J. Cibert; J. A. Gaj; A. Golnik; P. Kossacki; Stéphane Marcet; Eirini Sarigiannidou; H. Mariette

We describe a direct observation of the excitonic giant Zeeman splitting in (Ga,Mn)N, a wide-gap III-V diluted magnetic semiconductor. Reflectivity and absorption spectra measured at low temperatures display the A and B excitons, with a shift under magnetic field due to s,p-d exchange interactions. Using an excitonic model, we determine the difference of exchange integrals between Mn^3+ and free carriers in GaN, N_0(alpha-beta)=-1.2 +/- 0.2 eV. Assuming a reasonable value of alpha, this implies a positive sign of beta which corresponds to a rarely observed ferromagnetic interaction between the magnetic ions and the holes.


ACS Nano | 2014

Inhibition and enhancement of the spontaneous emission of quantum dots in micropillar cavities with radial-distributed Bragg reflectors.

Tomasz Jakubczyk; Helena Franke; T. Smoleński; Maciej Ściesiek; W. Pacuski; A. Golnik; Rüdiger Schmidt-Grund; Marius Grundmann; Carsten Kruse; D. Hommel; P. Kossacki

We present a micropillar cavity where nondesired radial emission is inhibited. The photonic confinement in such a structure is improved by implementation of an additional concentric radial-distributed Bragg reflector. Such a reflector increases the reflectivity in all directions perpendicular to the micropillar axis from a typical value of 15-31% to above 98%. An inhibition of the spontaneous emission of off-resonant excitonic states of quantum dots embedded in the microcavity is revealed by time-resolved experiments. It proves a decreased density of photonic states related to unwanted radial leakage of photons out of the micropillar. For on-resonance conditions, we find that the dot emission rate is increased, evidencing the Purcell enhancement of spontaneous emission. The proposed design can increase the efficiency of single-photon sources and bring to micropillar cavities the functionalities based on lengthened decay times.

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J. Kobak

University of Warsaw

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E. Janik

University of Warsaw

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