Room-temperature Tamm-plasmon exciton-polaritons with a WSe2 monolayer

Thanks to their strong light-matter interaction, atomically thin transition metal dichalcogenides are ideal active materials for cavity quantum electrodynamics. Here, the authors embed a WSe2monolayer within a Tamm-plasmon-polariton cavity, and observe exciton-polariton formation at room temperature...

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Main Authors: Nils Lundt, Sebastian Klembt, Evgeniia Cherotchenko, Simon Betzold, Oliver Iff, Anton V. Nalitov, Martin Klaas, Christof P. Dietrich, Alexey V. Kavokin, Sven Höfling, Christian Schneider
Format: Article
Language:English
Published: Nature Portfolio 2016-10-01
Series:Nature Communications
Online Access:https://doi.org/10.1038/ncomms13328
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author Nils Lundt
Sebastian Klembt
Evgeniia Cherotchenko
Simon Betzold
Oliver Iff
Anton V. Nalitov
Martin Klaas
Christof P. Dietrich
Alexey V. Kavokin
Sven Höfling
Christian Schneider
author_facet Nils Lundt
Sebastian Klembt
Evgeniia Cherotchenko
Simon Betzold
Oliver Iff
Anton V. Nalitov
Martin Klaas
Christof P. Dietrich
Alexey V. Kavokin
Sven Höfling
Christian Schneider
author_sort Nils Lundt
collection DOAJ
description Thanks to their strong light-matter interaction, atomically thin transition metal dichalcogenides are ideal active materials for cavity quantum electrodynamics. Here, the authors embed a WSe2monolayer within a Tamm-plasmon-polariton cavity, and observe exciton-polariton formation at room temperature.
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spelling doaj.art-e35759346f94436480878884ca4287ea2022-12-21T23:00:36ZengNature PortfolioNature Communications2041-17232016-10-01711610.1038/ncomms13328Room-temperature Tamm-plasmon exciton-polaritons with a WSe2 monolayerNils Lundt0Sebastian Klembt1Evgeniia Cherotchenko2Simon Betzold3Oliver Iff4Anton V. Nalitov5Martin Klaas6Christof P. Dietrich7Alexey V. Kavokin8Sven Höfling9Christian Schneider10Technische Physik and Wilhelm-Conrad-Röntgen Research Center for Complex Material Systems, Universität WürzburgTechnische Physik and Wilhelm-Conrad-Röntgen Research Center for Complex Material Systems, Universität WürzburgPhysics and Astronomy School, University of SouthamptonTechnische Physik and Wilhelm-Conrad-Röntgen Research Center for Complex Material Systems, Universität WürzburgTechnische Physik and Wilhelm-Conrad-Röntgen Research Center for Complex Material Systems, Universität WürzburgPhysics and Astronomy School, University of SouthamptonTechnische Physik and Wilhelm-Conrad-Röntgen Research Center for Complex Material Systems, Universität WürzburgTechnische Physik and Wilhelm-Conrad-Röntgen Research Center for Complex Material Systems, Universität WürzburgPhysics and Astronomy School, University of SouthamptonTechnische Physik and Wilhelm-Conrad-Röntgen Research Center for Complex Material Systems, Universität WürzburgTechnische Physik and Wilhelm-Conrad-Röntgen Research Center for Complex Material Systems, Universität WürzburgThanks to their strong light-matter interaction, atomically thin transition metal dichalcogenides are ideal active materials for cavity quantum electrodynamics. Here, the authors embed a WSe2monolayer within a Tamm-plasmon-polariton cavity, and observe exciton-polariton formation at room temperature.https://doi.org/10.1038/ncomms13328
spellingShingle Nils Lundt
Sebastian Klembt
Evgeniia Cherotchenko
Simon Betzold
Oliver Iff
Anton V. Nalitov
Martin Klaas
Christof P. Dietrich
Alexey V. Kavokin
Sven Höfling
Christian Schneider
Room-temperature Tamm-plasmon exciton-polaritons with a WSe2 monolayer
Nature Communications
title Room-temperature Tamm-plasmon exciton-polaritons with a WSe2 monolayer
title_full Room-temperature Tamm-plasmon exciton-polaritons with a WSe2 monolayer
title_fullStr Room-temperature Tamm-plasmon exciton-polaritons with a WSe2 monolayer
title_full_unstemmed Room-temperature Tamm-plasmon exciton-polaritons with a WSe2 monolayer
title_short Room-temperature Tamm-plasmon exciton-polaritons with a WSe2 monolayer
title_sort room temperature tamm plasmon exciton polaritons with a wse2 monolayer
url https://doi.org/10.1038/ncomms13328
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