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Sven Höfling

Researcher at University of Würzburg

Publications -  915
Citations -  25038

Sven Höfling is an academic researcher from University of Würzburg. The author has contributed to research in topics: Quantum dot & Photon. The author has an hindex of 67, co-authored 870 publications receiving 20424 citations. Previous affiliations of Sven Höfling include University of Science and Technology of China & Conrad Hotels.

Papers
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Highly efficient electrically triggered quantum dot micropillar single photon source

TL;DR: In this paper, the authors presented an electrically triggered single photon emission from low mode volume quantum dot-micropillar cavities at operating frequencies of up to 220 MHz.
Journal ArticleDOI

Multi-dimensional laser spectroscopy of exciton polaritons with spatial light modulators

TL;DR: In this article, an experimental system that allows one to easily access the dispersion curve of exciton-polaritons in a microcavity is described. But this system is based on two spatial light modulators, one for changing the excitation angles (momenta), and the other for tuning the excitations wavelength.
Journal ArticleDOI

Carrier transfer between confined and localized states in type II InAs/GaAsSb quantum wells

TL;DR: In this paper, temperature-resolved photoluminescence studies were performed on tensely-strained AlSb/InAs/GaAsSb W-shaped type II quantum wells.
Proceedings ArticleDOI

III-V semiconductor mid-infrared interband cascade light emitters and detectors

TL;DR: In this paper, the authors investigated ideal growth conditions for InAs/GaSb type-II superlattices (T2SL) for the implementation in interband cascade detectors (ICDs) with cut-off wavelengths up to 7.5 μm at room temperature.
Posted Content

Relaxation Oscillations and Ultrafast Emission Pulses in a Disordered Expanding Polariton Condensate

TL;DR: This work investigates the dynamics of an exciton-polariton condensate which emerges in semiconductor microcavity subject to disorder, which determines its spatial and temporal behaviour and reveals complex burst-like time evolution under non-resonant optical pulsed excitation.