Search Results - "Mørk, J"

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  1. 1

    Decoherence in semiconductor cavity QED systems due to phonon couplings by Kaer, P., Mørk, J.

    “…We investigate the effect of electron-phonon interactions on the coherence properties of single photons emitted from a semiconductor cavity QED (quantum…”
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    Random nanolasing in the Anderson localized regime by Liu, J., Garcia, P. D., Ek, S., Gregersen, N., Suhr, T., Schubert, M., Mørk, J., Stobbe, S., Lodahl, P.

    Published in Nature nanotechnology (01-04-2014)
    “…The development of nanoscale optical devices for classical and quantum photonics 1 , 2 , 3 , 4 , 5 is affected by unavoidable fabrication imperfections that…”
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  3. 3

    Modulation response of nanoLEDs and nanolasers exploiting Purcell enhanced spontaneous emission by Suhr, T, Gregersen, N, Yvind, K, Mørk, J

    Published in Optics express (24-05-2010)
    “…The modulation bandwidth of quantum well nanoLED and nanolaser devices is calculated from the laser rate equations using a detailed model for the Purcell…”
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  4. 4

    Non-markovian model of photon-assisted dephasing by electron-phonon interactions in a coupled quantum-dot-cavity system by Kaer, P, Nielsen, T R, Lodahl, P, Jauho, A-P, Mørk, J

    Published in Physical review letters (16-04-2010)
    “…We investigate the influence of electron-phonon interactions on the dynamical properties of a quantum-dot-cavity QED system. We show that non-markovian effects…”
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  5. 5

    Theory of nanolaser devices: Rate equation analysis versus microscopic theory by Lorke, M., Suhr, T., Gregersen, N., Mørk, J.

    “…A rate equation theory for quantum-dot-based nanolaser devices is developed. We show that these rate equations are capable of reproducing results of a…”
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    Quantum-dot nano-cavity lasers with Purcell-enhanced stimulated emission by Gregersen, N., Suhr, T., Lorke, M., Mørk, J.

    Published in Applied physics letters (26-03-2012)
    “…We present a rate equation model for quantum-dot light-emitting devices that take into account Purcell enhancement of both spontaneous emission and stimulated…”
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  8. 8

    Microscopic theory of phonon-induced effects on semiconductor quantum dot decay dynamics in cavity QED by Kaer, P., Nielsen, T. R., Lodahl, P., Jauho, A.-P., Mørk, J.

    “…We investigate the influence of the electron-phonon interaction on the decay dynamics of a quantum dot coupled to an optical microcavity. We show that the…”
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  9. 9

    Bloch-wave engineering of quantum dot micropillars for cavity quantum electrodynamics experiments by Lermer, M, Gregersen, N, Dunzer, F, Reitzenstein, S, Höfling, S, Mørk, J, Worschech, L, Kamp, M, Forchel, A

    Published in Physical review letters (03-02-2012)
    “…We have employed Bloch-wave engineering to realize submicron diameter high quality factor GaAs/AlAs micropillars (MPs). The design features a tapered cavity in…”
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  10. 10

    Prognostic impact of chromosomal aberrations and GNAQ, GNA11 and BAP1 mutations in uveal melanoma by Staby, Kjersti M., Gravdal, Karsten, Mørk, Sverre J., Heegaard, Steffen, Vintermyr, Olav K., Krohn, Jørgen

    Published in Acta ophthalmologica (Oxford, England) (01-02-2018)
    “…Purpose To evaluate clinico‐pathological and molecular prognostic factors in a well‐defined series of posterior uveal melanoma (UM) with focus on chromosomal…”
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  11. 11

    Numerical investigation of electromagnetically induced transparency in a quantum dot structure by Nielsen, P Kaer, Thyrrestrup, H, Mørk, J, Tromborg, B

    Published in Optics express (14-05-2007)
    “…A numerical investigation of pulse propagation in a quantum dot structure in the regime of electromagnetically induced transparency is reported. The quantum…”
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    Heterodyne pump probe measurements of nonlinear dynamics in an indium phosphide photonic crystal cavity by Heuck, M., Combrié, S., Lehoucq, G., Malaguti, S., Bellanca, G., Trillo, S., Kristensen, P. T., Mørk, J., Reithmaier, J. P., de Rossi, A.

    Published in Applied physics letters (28-10-2013)
    “…Using a sensitive two-color heterodyne pump-probe technique, we investigate the carrier dynamics of an InP photonic crystal nanocavity. The heterodyne…”
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  14. 14

    Modulation response of quantum dot nanolight-emitting-diodes exploiting purcell-enhanced spontaneous emission by Suhr, T., Gregersen, N., Lorke, M., Mørk, J.

    Published in Applied physics letters (23-05-2011)
    “…The modulation bandwidth for a quantum dot light-emitting device is calculated using a detailed model for the spontaneous emission including the optical and…”
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  15. 15

    Switch-on dynamics of nanocavity laser devices by Lorke, M., Nielsen, T. R., Mørk, J.

    Published in Applied physics letters (10-10-2011)
    “…Theoretical investigations of the switch-on behavior of semiconductor quantum dot based nanocavity laser devices are presented. From a microscopic treatment of…”
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  16. 16

    A comparison between experiment and theory on few-quantum-dot nanolasing in a photonic-crystal cavity by Liu, J, Ates, S, Lorke, M, Mørk, J, Lodahl, P, Stobbe, S

    Published in Optics express (18-11-2013)
    “…We present an experimental and theoretical study on the gain mechanism in a photonic-crystal-cavity nanolaser with embedded quantum dots. From time-resolved…”
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  17. 17

    Influence of carrier dynamics on the modulation bandwidth of quantum-dot based nanocavity devices by Lorke, M., Nielsen, T. R., Mørk, J.

    Published in Applied physics letters (22-11-2010)
    “…We theoretically investigate the modulation response of quantum-dot based nanocavity light emitting devices. For high Purcell enhancement factors, our theory…”
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  18. 18

    Phase-locking regimes of photonic crystal nanocavity laser arrays by Suhr, T., Kristensen, P. T., Mørk, J.

    Published in Applied physics letters (19-12-2011)
    “…We model and analyze the dynamical properties of coupled photonic crystal nanocavity lasers. The model includes Purcell enhancement of the spontaneous emission…”
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