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Publikationen

R

Compact logic NAND-Gate based on a single in-plane quantum-wire transistor

Reitzenstein, S., Worschech, L., Muller, C. R. and Forchel, A.

Ieee Electron Device Letters 26, 142–144 (2005).

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Coherent photonic coupling of semiconductor quantum dots

Reitzenstein, S., Loffler, A., Hofmann, C., Kubanek, A., Kamp, M., Reithmaier, J. P., Forchel, A., Kulakovskii, V. D., Keldysh, L. V., Ponomarev, I. V. and Reinecke, T. L.

Optics Letters 31, 1738–1740 (2006).

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Lasing in high-Q quantum-dot micropillar cavities

Reitzenstein, S., Bazhenov, A., Gorbunov, A., Hofmann, C., Munch, S., Loffler, A., Kamp, M., Reithmaier, J. P., Kulakovskii, V. D. and Forchel, A.

Applied Physics Letters 89, 051107 (2006).

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Strong and weak coupling of single quantum dot excitons in pillar microcavities

Reitzenstein, S., Hofmann, C., Loffler, A., Kubanek, A., Reithmaier, J. P., Kamp, M., Kulakovskii, V. D., Keldysh, L. V., Reinecke, T. L. and Forchel, A.

Physica Status Solidi B-basic Solid State Physics 243, 2224–2228 (2006).

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AlAs/GaAs micropillar cavities with quality factors exceeding 150.000

Reitzenstein, S., Hofmann, C., Gorbunov, A., Gorbunov, M., Straub, M., Kwon, S. H., Schneider, C., Loffler, A., Höfling, S., Kamp, M. and Forchel, A.

Applied Physics Letters 90, 251109 (2007).

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Time resolved microphotoluminescence studies of single InP nanowires grown by low pressure metal organic chemical vapor deposition

Reitzenstein, S., Munch, S., Hofmann, C., Forchel, A., Crankshaw, S., Chuang, L. C., Moewe, M. and Chang-Hasnain, C.

Applied Physics Letters 91, 091103 (2007).

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Single quantum dot controlled lasing effects in high-Q micropillar cavities

Reitzenstein, S., Bockler, C., Bazhenov, A., Gorbunov, A., Loffler, A., Kamp, M., Kulakovskii, V. D. and Forchel, A.

Optics Express 16, 4848–4857 (2008).

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Low threshold electrically pumped quantum dot-micropillar lasers

Reitzenstein, S., Heindel, T., Kistner, C., Rahimi-Iman, A., Schneider, C., Höfling, S. and Forchel, A.

Applied Physics Letters 93, 061104 (2008).

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Single quantum dot controlled gain modulation in high-Q micropillar lasers

Reitzenstein, S., Bockler, C., Bazhenov, A., Gorbunov, A., Munch, S., Loffler, A., Kamp, M., Kulakovskii, V. D. and Forchel, A.

Physica Status Solidi B-basic Solid State Physics 246, 277–282 (2009).

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Oscillatory variations in the Q factors of high quality micropillar cavities

Reitzenstein, S., Gregersen, N., Kistner, C., Strauss, M., Schneider, C., Pan, L., Nielsen, T. R., Höfling, S., Mork, J. and Forchel, A.

Applied Physics Letters 94, 061108 (2009).

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Control of the Strong Light-Matter Interaction between an Elongated In0.3Ga0.7As Quantum Dot and a Micropillar Cavity Using External Magnetic Fields

Reitzenstein, S., Munch, S., Franeck, P., Rahimi-Iman, A., Loffler, A., Höfling, S., Worschech, L. and Forchel, A.

Physical Review Letters 103, 127401 (2009).

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Semiconductor Cavity Quantum Electrodynamics with Single Quantum Dots

Reitzenstein, S., Schneider, C., Munch, S., Kistner, C., Strauss, M., Huggenberger, A., Franeck, P., Weinmann, P., Kamp, M., Höfling, S., Worschech, L. and Forchel, A.

Acta Physica Polonica A 116, 445–450 (2009).

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Optimized designs for telecom-wavelength quantum light sources based on hybrid circular Bragg gratings

Rickert, L., Kupko, T., Rodt, S., Reitzenstein, S. and Heindel, T.

Opt. Express 27, 36824–36837 (2019).

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Density and size control of InP/GaInP quantum dots on GaAs substrate grown by gas source molecular beam epitaxy

Rodel, R., Bauer, A., Kremling, S., Reitzenstein, S., Höfling, S., Kamp, M., Worschech, L. and Forchel, A.

Nanotechnology 23, 015605 (2012).

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Deterministically fabricated solid-state quantum-light sources

Rodt, S., Reitzenstein, S. and Heindel, T.

Journal of Physics: Condensed Matter 32, 153003 (2020).

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S

3D printed micro-optics for quantum technology: Optimised coupling of single quantum dot emission into a single-mode fibre

Sartison, M., Weber, a. K., Thiele, S., Bremer, L., Fischbach, S., Herzog, T., Kolatschek, S., Jetter, M., Reitzenstein, S., Herkommer, A., Michler, P., Portalupi, S. L., Giessen, H. and and, a.

Light: Advanced Manufacturing 2, 1–17 (2021).

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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., Helversen, M. v., Dangel, C., Schmidt, R., Bremer, L., Bopp, F., Reuter, D., Wieck, A. D., Rodt, S., Finley, J. J., Jahnke, F., Ludwig, A. and Reitzenstein, S.

arXiv e-prints , (2021).

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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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Mode selection in electrically driven quantum dot microring cavities

Schlehahn, A., Albert, F., Schneider, C., Höfling, S., Reitzenstein, S., Wiersig, J. and Kamp, M.

Optics Express 21, 15951–15958 (2013).

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Operating single quantum emitters with a compact Stirling cryocooler

Schlehahn, A., Kr?ger, L., Gschrey, M., Schulze, J.-H., Rodt, S., Strittmatter, A., Heindel, T. and Reitzenstein, S.

Review of Scientific Instruments 86, 013113 (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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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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A stand-alone fiber-coupled single-photon source

Schlehahn, A., Fischbach, S., Schmidt, R., Kaganskiy, A., Strittmatter, A., Rodt, S., Heindel, T. and Reitzenstein, S.

Scientific Reports 8, 1340 (2018).

ArXiv e-prints 1703.10536.

Press Release: http://rdcu.be/FgwW

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Suppressed antibunching via spectral filtering: An analytical study in the two-photon Mollow regime

Schleibner, J., Bounouar, S., Strauß, M., Reitzenstein, S., Knorr, A. and Carmele, A.

Phys. Rev. A 99, 023813 (2019).

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Large threshold hysteresis in a narrow AlGaAs/GaAs channel with embedded quantum dots

Schliemann, A., Worschech, L., Reitzenstein, S., Kaiser, S. and Forchel, A.

Applied Physics Letters 81, 2115–2117 (2002).

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Injection Locking of Quantum-Dot Microlasers Operating in the Few-Photon Regime

Schlottmann, E., Holzinger, S., Lingnau, B., Lüdge, K., Schneider, C., Kamp, M., Höfling, S., Wolters, J. and Reitzenstein, S.

Phys. Rev. Applied 6, 044023 (2016).

ArXiv e-prints 1604.02817.

Physical Review Applied Editors' Suggestion (October 2016)

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