Publikation: Femtosecond quantum optics with semiconductor nanostructures
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First steps in a new regime of quantum optics are outlined where solid-state nanostructures are controlled in time with a precision down to less than an oscillation cycle of light. We demonstrate femtosecond coherent excitation and readout of a single electron in a strongly confined semiconductor quantum dot. The physics of increased coupling to the light field via broadband plasmonic nanoantennas and dielectric microresonators is mapped out. In the second part, the new field of terahertz quantum optics is introduced where light-matter interaction approaches the frequency scale of the carrier wave itself. Interesting perspectives arise due to the possibility of switching such systems on sub-cycle timescales.
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BRATSCHITSCH, Rudolf, Rupert HUBER, Alfred LEITENSTORFER, 2012. Femtosecond quantum optics with semiconductor nanostructures. In: JAHNKE, Frank, ed.. Quantum optics with semiconductor nanostructures. Oxford: WP, Woodhead Publ., 2012, pp. 487-527. Woodhead Publishing series in electronic and optical materials. 28. ISBN 978-0-85709-232-8. Available under: doi: 10.1533/9780857096395.5.485BibTex
@incollection{Bratschitsch2012Femto-49450, year={2012}, doi={10.1533/9780857096395.5.485}, title={Femtosecond quantum optics with semiconductor nanostructures}, number={28}, isbn={978-0-85709-232-8}, publisher={WP, Woodhead Publ.}, address={Oxford}, series={Woodhead Publishing series in electronic and optical materials}, booktitle={Quantum optics with semiconductor nanostructures}, pages={487--527}, editor={Jahnke, Frank}, author={Bratschitsch, Rudolf and Huber, Rupert and Leitenstorfer, Alfred} }
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