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Dive into the research topics where Mirco Kolarczik is active.

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Featured researches published by Mirco Kolarczik.


Nature Communications | 2013

Quantum coherence induces pulse shape modification in a semiconductor optical amplifier at room temperature

Mirco Kolarczik; Nina Owschimikow; Julian Korn; Benjamin Lingnau; Yücel Kaptan; Dieter Bimberg; Eckehard Schöll; Kathy Lüdge; Ulrike Woggon

Coherence in light–matter interaction is a necessary ingredient if light is used to control the quantum state of a material system. Coherent effects are firmly associated with isolated systems kept at low temperature. The exceedingly fast dephasing in condensed matter environments, in particular at elevated temperatures, may well erase all coherent information in the material at timescales shorter than a laser excitation pulse. Here we show for an ensemble of semiconductor quantum dots that even in the presence of ultrafast dephasing, for suitably designed condensed matter systems quantum-coherent effects are robust enough to be observable at room temperature. Our conclusions are based on an analysis of the reshaping an ultrafast laser pulse undergoes on propagation through a semiconductor quantum dot amplifier. We show that this pulse modification contains the signature of coherent light–matter interaction and can be controlled by adjusting the population of the quantum dots via electrical injection.


Physical Review Letters | 2016

Long-Lived Valley Polarization of Intra-Valley Trions in Monolayer WSe2

Akshay Singh; Kha Tran; Mirco Kolarczik; Joe Seifert; Yiping Wang; Kai Hao; Dennis Pleskot; Nathaniel Gabor; Sophia Helmrich; Nina Owschimikow; Ulrike Woggon; Xiaoqin Li

We investigate valley dynamics associated with trions in monolayer tungsten diselenide (WSe_{2}) using polarization resolved two-color pump-probe spectroscopy. When tuning the pump and probe energy across the trion resonance, distinct trion valley polarization dynamics are observed as a function of energy and attributed to the intravalley and intervalley trions in monolayer WSe_{2}. We observe no decay of a near-unity valley polarization associated with the intravalley trions during ∼ 25  ps, while the valley polarization of the intervalley trions exhibits a fast decay of ∼4  ps. Furthermore, we show that resonant excitation is a prerequisite for observing the long-lived valley polarization associated with the intravalley trion. The exceptionally robust valley polarization associated with resonantly created intravalley trions discovered here may be explored for future valleytronic applications such as valley Hall effects.


Applied Physics Letters | 2014

Stability of quantum-dot excited-state laser emission under simultaneous ground-state perturbation

Yücel Kaptan; André Röhm; Bastian Herzog; Benjamin Lingnau; Holger Schmeckebier; D. Arsenijević; V. Mikhelashvili; O. Schöps; Mirco Kolarczik; G. Eisenstein; D. Bimberg; Ulrike Woggon; Nina Owschimikow; Kathy Lüdge

The impact of ground state amplification on the laser emission of In(Ga)As quantum dot excited state lasers is studied in time-resolved experiments. We find that a depopulation of the quantum dot ground state is followed by a drop in excited state lasing intensity. The magnitude of the drop is strongly dependent on the wavelength of the depletion pulse and the applied injection current. Numerical simulations based on laser rate equations reproduce the experimental results and explain the wavelength dependence by the different dynamics in lasing and non-lasing sub-ensembles within the inhomogeneously broadened quantum dots. At high injection levels, the observed response even upon perturbation of the lasing sub-ensemble is small and followed by a fast recovery, thus supporting the capacity of fast modulation in dual-state devices.


Applied Physics Letters | 2014

Gain dynamics of quantum dot devices for dual-state operation

Yücel Kaptan; Holger Schmeckebier; Bastian Herzog; D. Arsenijević; Mirco Kolarczik; V. Mikhelashvili; Nina Owschimikow; G. Eisenstein; D. Bimberg; Ulrike Woggon

Ground state gain dynamics of In(Ga)As-quantum dot excited state lasers are investigated via single-color ultrafast pump-probe spectroscopy below and above lasing threshold. Two-color pump-probe experiments are used to localize lasing and non-lasing quantum dots within the inhomogeneously broadened ground state. Single-color results yield similar gain recovery rates of the ground state for lasing and non-lasing quantum dots decreasing from 6 ps to 2 ps with increasing injection current. We find that ground state gain dynamics are influenced solely by the injection current and unaffected by laser operation of the excited state. This independence is promising for dual-state operation schemes in quantum dot based optoelectronic devices.


Optics Express | 2014

Pump-probe quantum state tomography in a semiconductor optical amplifier

Nicolai B. Grosse; Nina Owschimikow; Roland Aust; Benjamin Lingnau; A. Koltchanov; Mirco Kolarczik; Kathy Lüdge; Ulrike Woggon

Pump-probe quantum state tomography was applied to the transmission of a coherent state through an In(Ga)As based quantum dot optical amplifier during the interaction with an optical pump pulse. The Wigner function and the statistical moments of the field were extracted and used to determine the degree of population inversion and the signal-to-noise ratio in a sub-picosecond time window.


Applied Physics Letters | 2016

Strong amplitude-phase coupling in submonolayer quantum dots

Bastian Herzog; Benjamin Lingnau; Mirco Kolarczik; Yücel Kaptan; Dieter Bimberg; A. Maaßdorf; U.W. Pohl; Ricardo Rosales; Jan-Hindrik Schulze; A. Strittmatter; Markus Weyers; Ulrike Woggon; Kathy Lüdge; Nina Owschimikow

Submonolayer quantum dots promise to combine the beneficial features of zero- and two-dimensional carrier confinement. To explore their potential with respect to all-optical signal processing, we investigate the amplitude-phase coupling (α-parameter) in semiconductor optical amplifiers based on InAs/GaAs submonolayer quantum dots in ultrafast pump-probe experiments. Lateral coupling provides an efficient carrier reservoir and gives rise to a large α-parameter. Combined with a high modal gain and an ultrafast gain recovery, this makes the submonolayer quantum dots an attractive gain medium for nonlinear optical signal processing.


Applied Physics Letters | 2017

Dynamic phase response and amplitude-phase coupling of self-assembled semiconductor quantum dots

Benjamin Lingnau; Bastian Herzog; Mirco Kolarczik; Ulrike Woggon; Kathy Lüdge; Nina Owschimikow

The optical excitation of semiconductor gain media introduces both gain and refractive index changes, commonly referred to as amplitude-phase coupling. Quantum-confined structures with an energetically well separated carrier reservoir usually exhibit a decreased amplitude-phase coupling compared to bulk materials. However, its magnitude and definition is still controversially discussed. We investigate the fundamental processes influencing the amplitude-phase coupling in semiconductor quantum-dot media using a coupled-carrier rate-equation model. We are able to analyze the dependence on the electronic structure and suggest routes towards an optimization of the dynamic phase response of the gain material.


Applied Physics Letters | 2015

Fast gain and phase recovery of semiconductor optical amplifiers based on submonolayer quantum dots

Bastian Herzog; Nina Owschimikow; Jan-Hindrik Schulze; Ricardo Rosales; Yücel Kaptan; Mirco Kolarczik; Thomas Switaiski; A. Strittmatter; Dieter Bimberg; U.W. Pohl; Ulrike Woggon

Submonolayer quantum dots as active medium in opto-electronic devices promise to combine the high density of states of quantum wells with the fast recovery dynamics of self-assembled quantum dots. We investigate the gain and phase recovery dynamics of a semiconductor optical amplifier based on InAs submonolayer quantum dots in the regime of linear operation by one- and two-color heterodyne pump-probe spectroscopy. We find an as fast recovery dynamics as for quantum dot-in-a-well structures, reaching 2 ps at moderate injection currents. The effective quantum well embedding the submonolayer quantum dots acts as a fast and efficient carrier reservoir.


Applied Physics Letters | 2014

Crossed excitons in a semiconductor nanostructure of mixed dimensionality

Nina Owschimikow; Mirco Kolarczik; Yücel Kaptan; Nicolai B. Grosse; Ulrike Woggon

Semiconductor systems of reduced dimensionality, e.g., quantum dots or quantum wells, display a characteristic spectrum of confined excitons. Combining several of these systems may lead to the formation of “crossed” excitons, and thus new equilibrium states and scattering channels. We derive gain excitation spectra from two-color pump-probe experiments on an In(Ga)As based quantum dot semiconductor optical amplifier by analyzing the amplitudes of the traces. This grants access to the quantum dot response, even in the presence of strong absorption by the surroundings at the excitation energy. The gain excitation spectra yield evidence of crossed quantum dot-bulk states.


international quantum electronics conference | 2013

Evidence of macroscopic coherence at room temperature: Rabi oscillation induced pulse break-up in a quantum dot amplifier

Mirco Kolarczik; Nina Owschimikow; Yücel Kaptan; Ulrike Woggon; Julian Korn; Benjamin Lingnau; Eckehard Schöll; Kathy Lüdge

We study experimentally and numerically the changes in pulse shape a Gaussian laser pulse undergoes when propagating through an electrically pumped quantum dot semiconductor optical amplifier (QD-SOA). The pulse energy is set to be resonant to the quantum dot ground state transition, and the pulse shape is analyzed in phase and amplitude in a heterodyne cross-correlation experiment. For the case of an inverted system, we observe the appearance of a periodic modulation of the temporal pulse profile above a critical pulse power. Similar signatures of pulse break-up have been observed at low temperature in quantum dot ensembles without electrical pumping and were linked to optically induced Rabi oscillations imprinting the coherent switching between absorption and stimulated emission of photons by the material system.

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Nina Owschimikow

Technical University of Berlin

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Ulrike Woggon

Technical University of Berlin

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Bastian Herzog

Technical University of Berlin

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Yücel Kaptan

Technical University of Berlin

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Benjamin Lingnau

Technical University of Berlin

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Kathy Lüdge

Technical University of Berlin

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Nicolai B. Grosse

Technical University of Berlin

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Sophia Helmrich

Technical University of Berlin

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Akshay Singh

University of Texas at Austin

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Xiaoqin Li

University of Texas at Austin

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