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Publikationen

A

Electrically driven single photon source based on a site-controlled quantum dot with self-aligned current injection

Unrau, W., Quandt, D., Schulze, J. H., Heindel, T., Germann, T. D., Hitzemann, O., Strittmatter, A., Reitzenstein, S., Pohl, U. W. and Bimberg, D.

Applied Physics Letters 101, 211119 (2012).

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Electroluminescence from spatially confined exciton polaritons in a textured microcavity

Winkler, K., Schneider, C., Fischer, J., Rahimi-Iman, A., Amthor, M., Forchel, A., Reitzenstein, S., Höfling, S. and Kamp, M.

Applied Physics Letters 102, 041101 (2013).

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High beta lasing in micropillar cavities with adiabatic layer design

Lermer, M., Gregersen, N., Lorke, M., Schild, E., Gold, P., Mork, J., Schneider, C., Forchel, A., Reitzenstein, S., Höfling, S. and Kamp, M.

Applied Physics Letters 102, 052114 (2013).

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In situ electron-beam lithography of deterministic single-quantum-dot mesa-structures using low-temperature cathodoluminescence spectroscopy

Gschrey, M., Gericke, F., Schüssler, A., Schmidt, R., Schulze, J.-H., Heindel, T., Rodt, S., Strittmatter, A. and Reitzenstein, S.

Applied Physics Letters 102, 251113 (2013).

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Cascaded emission of linearly polarized single photons from positioned InP/GaInP quantum dots

Braun, T., Unsleber, S., Baumann, V., Gschrey, M., Rodt, S., Reitzenstein, S., Schneider, C., Höfling, S. and Kamp, M.

Applied Physics Letters 103, 191113 (2013).

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All-optical depletion of dark excitons from a semiconductor quantum dot

Schmidgall, E. R., Schwartz, I., Cogan, D., Gantz, L., Heindel, T., Reitzenstein, S. and Gershoni, D.

Applied Physics Letters 106, 193101 (2015).

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Single-photon emission at a rate of 143 MHz from a deterministic quantum-dot microlens triggered by a mode-locked vertical-external-cavity surface-emitting laser

Schlehahn, A., Gaafar, M., Vaupel, M., Gschrey, M., Schnauber, P., Schulze, J.-H., Rodt, S., Strittmatter, A., Stolz, W., Rahimi-Iman, A., Heindel, T., Koch, M. and Reitzenstein, S.

Applied Physics Letters 107, 041105 (2015).

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Generating single photons at gigahertz modulation-speed using electrically controlled quantum dot microlenses

Schlehahn, A., Schmidt, R., Hopfmann, C., Schulze, J.-H., Strittmatter, A., Heindel, T., Gantz, L., Schmidgall, E. R., Gershoni, D. and Reitzenstein, S.

Applied Physics Letters 108, 021104 (2016).

ArXiv e-prints 1510.07314.

Featured in Nature Photonics | Research Highlights: Nature Photonics 10, 145 (2016) (doi:10.1038/nphoton.2016.33) Springer-Nature OutstandingPoster Award at the 9th International Conference on Quantum Dots (QD2016) sponsored by the Nature Publishing Group

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On-chip light detection using monolithically integrated quantum dot micropillars

Karow, M. M., Munnelly, P., Heindel, T., Kamp, M., Höfling, S., Schneider, C. and Reitzenstein, S.

Applied Physics Letters 108, 081110 (2016).

APL Editor's Pick by Shanhui Fan (week of Feb 28 2016)

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Two-photon interference from remote deterministic quantum dot microlenses

Thoma, A., Schnauber, P., Böhm, J., Gschrey, M., Schulze, J.-H., Strittmatter, A., Rodt, S., Heindel, T. and Reitzenstein, S.

Applied Physics Letters 110, 011104 (2017).

ArXiv e-prints 1611.06859.

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Resonance fluorescence of a site-controlled quantum dot realized by the buried-stressor growth technique

Strauß, M., Kaganskiy, A., Voigt, R., Schnauber, P., Schulze, J.-H., Rodt, S., Strittmatter, A. and Reitzenstein, S.

Applied Physics Letters 110, 111101 (2017).

ArXiv e-prints 1612.08063.

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Efficient single-photon source based on a deterministically fabricated single quantum dot - microstructure with backside gold mirror

Fischbach, S., Kaganskiy, A., Tauscher, E. B. Y., Gericke, F., Thoma, A., Schmidt, R., Strittmatter, A., Heindel, T., Rodt, S. and Reitzenstein, S.

Applied Physics Letters 111, 011106 (2017).

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Micropillars with a controlled number of site-controlled quantum dots

Kaganskiy, A., Gericke, F., Heuser, T., Heindel, T., Porte, X. and Reitzenstein, S.

Applied Physics Letters 112, 071101 (2018).

ArXiv e-prints 1711.09235.

Featured Article & Selected for Cover Page

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Generation of maximally entangled states and coherent control in quantum dot microlenses

Bounouar, S., Haye, C. d. l., Strauß, M., Schnauber, P., Thoma, A., Gschrey, M., Schulze, J.-H., Strittmatter, A., Rodt, S. and Reitzenstein, S.

Applied Physics Letters 112, 153107 (2018).

ArXiv e-prints 1801.03376.

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Quantum dot micropillar cavities with quality factors exceeding 250,000

Schneider, C., Gold, P., Reitzenstein, S., Höfling, S. and Kamp, M.

Applied Physics B 122, 1-6 (2016).

ArXiv e-prints 1510.05447.

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Development of site-controlled quantum dot arrays acting as scalable sources of indistinguishable photons

Große, J., von Helversen, M., Koulas-Simos, A., Hermann, M. and Reitzenstein, S.

APL Photonics 5, 096107 (2020).

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Quantum dot single-photon emission coupled into single-mode fibers with 3D printed micro-objectives

Bremer, L., Weber, K., Fischbach, S., Thiele, S., Schmidt, M., Kaganskiy, A., Rodt, S., Herkommer, A., Sartison, M., Portalupi, S. L., Michler, P., Giessen, H. and Reitzenstein, S.

APL Photonics 5, 106101 (2020).

ArXiv e-prints 2005.11198v1.

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Spectral control of deterministically fabricated quantum dot waveguide systems using the quantum confined Stark effect

Schnauber, P., Große, J., Kaganskiy, A., Ott, M., Anikin, P., Schmidt, R., Rodt, S. and Reitzenstein, S.

APL Photonics 6, 050801 (2021).

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An electrically driven cavity-enhanced source of indistinguishable photons with 61% overall efficiency

Schlehahn, A., Thoma, A., Munnelly, P., Kamp, M., Höfling, S., Heindel, T., Schneider, C. and Reitzenstein, S.

APL Photonics 1, 011301 (2016).

Selected for cover image

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Accessing the dark exciton spin in deterministic quantum-dot microlenses

Heindel, T., Thoma, A., Schwartz, I., Schmidgall, E. R., Gantz, L., Cogan, D., Strauß, M., Schnauber, P., Gschrey, M., Schulze, J.-H., Strittmatter, A., Rodt, S., Gershoni, D. and Reitzenstein, S.

APL Photonics 2, 121303 (2017).

ArXiv e-prints 1706.05164.

Featured Headliner | Press Release: https://publishing.aip.org/publishing/journal-highlights/using-dark-side-excitons-quantum-computing

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Fabrication of dense diameter-tuned quantum dot micropillar arrays for applications in photonic information processing

Heuser, T., Große, J., Kaganskiy, A., Brunner, D. and Reitzenstein, S.

APL Photonics 3, 116103 (2018).

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High-Q whispering gallery modes in pillar microcavities

Nowicki-Bringuier, Y. R., Claudon, J., Bockler, C., Reitzenstein, S., Kamp, M., Forchel, A. and Gerard, J. M.

Annales De Physique 32, 123–126 (2007).

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Enhanced photon-extraction efficiency from InGaAs/GaAs quantum dots in deterministic photonic structures at 1.3 μm fabricated by in-situ electron-beam lithography

Srocka, N., Musiał, A., Schneider, P.-I., Mrowiński, P., Holewa, P., Burger, S., Quandt, D., Strittmatter, A., Rodt, S., Reitzenstein, S. and Sęk, G.

AIP Advances 8, 085205 (2018).

ArXiv e-prints 1805.00624.

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Cesium-Vapor-Based Delay of Single Photons Emitted by Deterministically Fabricated Quantum Dot Microlenses

Bremer, L., Fischbach, S., Park, S.-I., Rodt, S., Song, J.-D., Heindel, T. and Reitzenstein, S.

Advanced Quantum Technologies , 1900071 (2019).

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Plug and Play Fiber-Coupled 73 kHz Single-Photon Source Operating in the Telecom O-Band

Musiał, A., Żołnacz, K., Srocka, N., Kravets, O., Große, J., Olszewski, J., Poturaj, K., Wójcik, G., Mergo, P., Dybka, K., Dyrkacz, M., Dłubek, M., Lauritsen, K., Bülter, A., Schneider, P.-I., Zschiedrich, L., Burger, S., Rodt, S., Urbańczyk, W., Sęk, G. and Reitzenstein, S.

Advanced Quantum Technologies , 2000018 (2020).

ArXiv e-prints 1912.10351.

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Front Cover: Plug and Play Fiber-Coupled 73 kHz Single-Photon Source Operating in the Telecom O-Band (Adv. Quantum Technol. 6/2020)

Musiał, A., Żołnacz, K., Srocka, N., Kravets, O., Große, J., Olszewski, J., Poturaj, K., Wójcik, G., Mergo, P., Dybka, K., Dyrkacz, M., Dłubek, M., Lauritsen, K., Bülter, A., Schneider, P.-I., Zschiedrich, L., Burger, S., Rodt, S., Urbańczyk, W., Sęk, G. and Reitzenstein, S.

Advanced Quantum Technologies 3, 2070061 (2020).

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Bright Electrically Controllable Quantum-Dot-Molecule Devices Fabricated by In Situ Electron-Beam Lithography

Schall, J., Deconinck, M., Bart, N., Florian, M., von Helversen, M., Dangel, C., Schmidt, R., Bremer, L., Bopp, F., Hüllen, I., Gies, C., Reuter, D., Wieck, A. D., Rodt, S., Finley, J. J., Jahnke, F., Ludwig, A. and Reitzenstein, S.

Advanced Quantum Technologies 4, 2100002 (2021).

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Front Cover: Bright Electrically Controllable Quantum-Dot-Molecule Devices Fabricated by In Situ Electron-Beam Lithography (Adv. Quantum Technol. 6/2021)

Schall, J., Deconinck, M., Bart, N., Florian, M., von Helversen, M., Dangel, C., Schmidt, R., Bremer, L., Bopp, F., Hüllen, I., Gies, C., Reuter, D., Wieck, A. D., Rodt, S., Finley, J. J., Jahnke, F., Ludwig, A. and Reitzenstein, S.

Advanced Quantum Technologies 4, 2170061 (2021).

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Physics and Applications of High-β Micro- and Nanolasers

Deng, H., Lippi, G. L., Mørk, J., Wiersig, J. and Reitzenstein, S.

Advanced Optical Materials n/a, 2100415 (2021).

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