Observation of bosonic condensation in a hybrid monolayer MoSe2-GaAs microcavity
Condensation of bosons into a macroscopic quantum state belongs to the most intriguing phenomena in nature. It was first realized in quantum gases of ultra-cold atoms, but more recently became accessible in open-dissipative, exciton-based solid-state systems at elevated temperatures. Semiconducting...
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creator | Waldherr, Max Lundt, Nils Martin, Klaas Betzold, Simon Wurdack, Matthias Baumann, Vasilij Estrecho, Eliezer Nalitov, Anton Cherotchenko, Evgenia Cai, Hui Ostrovskaya, Elena A Kavokin, Alexey V Tongay, Sefaattin Klembt, Sebastian Höfling, Sven Schneider, Christian |
description | Condensation of bosons into a macroscopic quantum state belongs to the most intriguing phenomena in nature. It was first realized in quantum gases of ultra-cold atoms, but more recently became accessible in open-dissipative, exciton-based solid-state systems at elevated temperatures. Semiconducting monolayer crystals have emerged as a new platform for studies of strongly bound excitons in ultimately thin materials. Here, we demonstrate the formation of a bosonic condensate driven by excitons hosted in an atomically thin layer of MoSe2, strongly coupled to light in a solid-state resonator. The structure is operated in the regime of collective strong coupling, giving rise to hybrid exciton-polariton modes composed of a Tamm-plasmon resonance, GaAs quantum well excitons and two-dimensional excitons confined in a monolayer of MoSe2. Polariton condensation in a monolayer crystal manifests by a superlinear increase of emission intensity from the hybrid polariton mode at injection powers as low as 4.8 pJ/pulse, as well as its density-dependent blueshift and a dramatic collapse of the emission linewidth as a hallmark of temporal coherence. Importantly, we observe a significant spin-polarization in the injected polariton condensate, a fingerprint of the core property of monolayer excitons subject to spin-valley locking. The observed effects clearly underpin the perspective of building novel highly non-linear valleytronic devices based on light-matter fluids, coherent bosonic light sources based on atomically thin materials, and paves the way towards studying materials with unconventional topological properties in the framework of bosonic condensation. |
doi_str_mv | 10.48550/arxiv.1805.03630 |
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It was first realized in quantum gases of ultra-cold atoms, but more recently became accessible in open-dissipative, exciton-based solid-state systems at elevated temperatures. Semiconducting monolayer crystals have emerged as a new platform for studies of strongly bound excitons in ultimately thin materials. Here, we demonstrate the formation of a bosonic condensate driven by excitons hosted in an atomically thin layer of MoSe2, strongly coupled to light in a solid-state resonator. The structure is operated in the regime of collective strong coupling, giving rise to hybrid exciton-polariton modes composed of a Tamm-plasmon resonance, GaAs quantum well excitons and two-dimensional excitons confined in a monolayer of MoSe2. Polariton condensation in a monolayer crystal manifests by a superlinear increase of emission intensity from the hybrid polariton mode at injection powers as low as 4.8 pJ/pulse, as well as its density-dependent blueshift and a dramatic collapse of the emission linewidth as a hallmark of temporal coherence. Importantly, we observe a significant spin-polarization in the injected polariton condensate, a fingerprint of the core property of monolayer excitons subject to spin-valley locking. The observed effects clearly underpin the perspective of building novel highly non-linear valleytronic devices based on light-matter fluids, coherent bosonic light sources based on atomically thin materials, and paves the way towards studying materials with unconventional topological properties in the framework of bosonic condensation.</description><identifier>EISSN: 2331-8422</identifier><identifier>DOI: 10.48550/arxiv.1805.03630</identifier><language>eng</language><publisher>Ithaca: Cornell University Library, arXiv.org</publisher><subject>Bosons ; Collapse ; Condensates ; Condensation ; Emission ; Excitons ; High temperature ; Light sources ; Locking ; Molybdenum compounds ; Monolayers ; Physics - Quantum Gases ; Polaritons ; Polarization (spin alignment) ; Quantum wells ; Solid state ; Ultracold atoms</subject><ispartof>arXiv.org, 2018-05</ispartof><rights>2018. This work is published under http://arxiv.org/licenses/nonexclusive-distrib/1.0/ (the “License”). Notwithstanding the ProQuest Terms and Conditions, you may use this content in accordance with the terms of the License.</rights><rights>http://arxiv.org/licenses/nonexclusive-distrib/1.0</rights><oa>free_for_read</oa><woscitedreferencessubscribed>false</woscitedreferencessubscribed></display><links><openurl>$$Topenurl_article</openurl><openurlfulltext>$$Topenurlfull_article</openurlfulltext><thumbnail>$$Tsyndetics_thumb_exl</thumbnail><link.rule.ids>228,230,780,784,885,27925</link.rule.ids><backlink>$$Uhttps://doi.org/10.48550/arXiv.1805.03630$$DView paper in arXiv$$Hfree_for_read</backlink><backlink>$$Uhttps://doi.org/10.1038/s41467-018-05532-7$$DView published paper (Access to full text may be restricted)$$Hfree_for_read</backlink></links><search><creatorcontrib>Waldherr, Max</creatorcontrib><creatorcontrib>Lundt, Nils</creatorcontrib><creatorcontrib>Martin, Klaas</creatorcontrib><creatorcontrib>Betzold, Simon</creatorcontrib><creatorcontrib>Wurdack, Matthias</creatorcontrib><creatorcontrib>Baumann, Vasilij</creatorcontrib><creatorcontrib>Estrecho, Eliezer</creatorcontrib><creatorcontrib>Nalitov, Anton</creatorcontrib><creatorcontrib>Cherotchenko, Evgenia</creatorcontrib><creatorcontrib>Cai, Hui</creatorcontrib><creatorcontrib>Ostrovskaya, Elena A</creatorcontrib><creatorcontrib>Kavokin, Alexey V</creatorcontrib><creatorcontrib>Tongay, Sefaattin</creatorcontrib><creatorcontrib>Klembt, Sebastian</creatorcontrib><creatorcontrib>Höfling, Sven</creatorcontrib><creatorcontrib>Schneider, Christian</creatorcontrib><title>Observation of bosonic condensation in a hybrid monolayer MoSe2-GaAs microcavity</title><title>arXiv.org</title><description>Condensation of bosons into a macroscopic quantum state belongs to the most intriguing phenomena in nature. It was first realized in quantum gases of ultra-cold atoms, but more recently became accessible in open-dissipative, exciton-based solid-state systems at elevated temperatures. Semiconducting monolayer crystals have emerged as a new platform for studies of strongly bound excitons in ultimately thin materials. Here, we demonstrate the formation of a bosonic condensate driven by excitons hosted in an atomically thin layer of MoSe2, strongly coupled to light in a solid-state resonator. The structure is operated in the regime of collective strong coupling, giving rise to hybrid exciton-polariton modes composed of a Tamm-plasmon resonance, GaAs quantum well excitons and two-dimensional excitons confined in a monolayer of MoSe2. Polariton condensation in a monolayer crystal manifests by a superlinear increase of emission intensity from the hybrid polariton mode at injection powers as low as 4.8 pJ/pulse, as well as its density-dependent blueshift and a dramatic collapse of the emission linewidth as a hallmark of temporal coherence. Importantly, we observe a significant spin-polarization in the injected polariton condensate, a fingerprint of the core property of monolayer excitons subject to spin-valley locking. The observed effects clearly underpin the perspective of building novel highly non-linear valleytronic devices based on light-matter fluids, coherent bosonic light sources based on atomically thin materials, and paves the way towards studying materials with unconventional topological properties in the framework of bosonic condensation.</description><subject>Bosons</subject><subject>Collapse</subject><subject>Condensates</subject><subject>Condensation</subject><subject>Emission</subject><subject>Excitons</subject><subject>High temperature</subject><subject>Light sources</subject><subject>Locking</subject><subject>Molybdenum compounds</subject><subject>Monolayers</subject><subject>Physics - Quantum Gases</subject><subject>Polaritons</subject><subject>Polarization (spin alignment)</subject><subject>Quantum wells</subject><subject>Solid state</subject><subject>Ultracold atoms</subject><issn>2331-8422</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2018</creationdate><recordtype>article</recordtype><sourceid>ABUWG</sourceid><sourceid>AFKRA</sourceid><sourceid>AZQEC</sourceid><sourceid>BENPR</sourceid><sourceid>CCPQU</sourceid><sourceid>DWQXO</sourceid><sourceid>GOX</sourceid><recordid>eNotj11LwzAYhYMgOOZ-gFcGvG5986bpx-UYOgeTCe6-JGmKGWsyk63Yf29dvTpwzuFwHkIeGKRZKQQ8y_Bj-5SVIFLgOYcbMkPOWVJmiHdkEeMBADAvUAg-Ix87FU3o5dl6R31LlY_eWU21d41xcfKto5J-DSrYhnbe-aMcTKDv_tNgspbLSDurg9eyt-fhnty28hjN4l_nZP_6sl-9JdvderNabhMpsEiYkZxpgboVWc4Za0RR5SpHNVqFGp9pUXGhQZcVNsBLBpliFUccQ8OE5HPyOM1ecetTsJ0MQ_2HXV-xx8bT1DgF_30x8Vwf_CW48VONUIxLeQYF_wXxP1lS</recordid><startdate>20180509</startdate><enddate>20180509</enddate><creator>Waldherr, Max</creator><creator>Lundt, Nils</creator><creator>Martin, Klaas</creator><creator>Betzold, Simon</creator><creator>Wurdack, Matthias</creator><creator>Baumann, Vasilij</creator><creator>Estrecho, Eliezer</creator><creator>Nalitov, Anton</creator><creator>Cherotchenko, Evgenia</creator><creator>Cai, Hui</creator><creator>Ostrovskaya, Elena A</creator><creator>Kavokin, Alexey V</creator><creator>Tongay, Sefaattin</creator><creator>Klembt, Sebastian</creator><creator>Höfling, Sven</creator><creator>Schneider, Christian</creator><general>Cornell University Library, arXiv.org</general><scope>8FE</scope><scope>8FG</scope><scope>ABJCF</scope><scope>ABUWG</scope><scope>AFKRA</scope><scope>AZQEC</scope><scope>BENPR</scope><scope>BGLVJ</scope><scope>CCPQU</scope><scope>DWQXO</scope><scope>HCIFZ</scope><scope>L6V</scope><scope>M7S</scope><scope>PIMPY</scope><scope>PQEST</scope><scope>PQQKQ</scope><scope>PQUKI</scope><scope>PRINS</scope><scope>PTHSS</scope><scope>GOX</scope></search><sort><creationdate>20180509</creationdate><title>Observation of bosonic condensation in a hybrid monolayer MoSe2-GaAs microcavity</title><author>Waldherr, Max ; Lundt, Nils ; Martin, Klaas ; Betzold, Simon ; Wurdack, Matthias ; Baumann, Vasilij ; Estrecho, Eliezer ; Nalitov, Anton ; Cherotchenko, Evgenia ; Cai, Hui ; Ostrovskaya, Elena A ; Kavokin, Alexey V ; Tongay, Sefaattin ; Klembt, Sebastian ; Höfling, Sven ; Schneider, Christian</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-a527-1ea31c52cf546311d5796b62b52c7b553c5935c0c892d038104b193227b5e15a3</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2018</creationdate><topic>Bosons</topic><topic>Collapse</topic><topic>Condensates</topic><topic>Condensation</topic><topic>Emission</topic><topic>Excitons</topic><topic>High temperature</topic><topic>Light sources</topic><topic>Locking</topic><topic>Molybdenum compounds</topic><topic>Monolayers</topic><topic>Physics - Quantum Gases</topic><topic>Polaritons</topic><topic>Polarization (spin alignment)</topic><topic>Quantum wells</topic><topic>Solid state</topic><topic>Ultracold atoms</topic><toplevel>online_resources</toplevel><creatorcontrib>Waldherr, Max</creatorcontrib><creatorcontrib>Lundt, Nils</creatorcontrib><creatorcontrib>Martin, Klaas</creatorcontrib><creatorcontrib>Betzold, Simon</creatorcontrib><creatorcontrib>Wurdack, Matthias</creatorcontrib><creatorcontrib>Baumann, Vasilij</creatorcontrib><creatorcontrib>Estrecho, Eliezer</creatorcontrib><creatorcontrib>Nalitov, Anton</creatorcontrib><creatorcontrib>Cherotchenko, Evgenia</creatorcontrib><creatorcontrib>Cai, Hui</creatorcontrib><creatorcontrib>Ostrovskaya, Elena A</creatorcontrib><creatorcontrib>Kavokin, Alexey V</creatorcontrib><creatorcontrib>Tongay, Sefaattin</creatorcontrib><creatorcontrib>Klembt, Sebastian</creatorcontrib><creatorcontrib>Höfling, Sven</creatorcontrib><creatorcontrib>Schneider, Christian</creatorcontrib><collection>ProQuest SciTech Collection</collection><collection>ProQuest Technology Collection</collection><collection>Materials Science & Engineering Collection</collection><collection>ProQuest Central (Alumni Edition)</collection><collection>ProQuest Central UK/Ireland</collection><collection>ProQuest Central Essentials</collection><collection>ProQuest Central</collection><collection>Technology Collection</collection><collection>ProQuest One Community College</collection><collection>ProQuest Central Korea</collection><collection>SciTech Premium Collection</collection><collection>ProQuest Engineering Collection</collection><collection>Engineering Database</collection><collection>Access via ProQuest (Open Access)</collection><collection>ProQuest One Academic Eastern Edition (DO NOT USE)</collection><collection>ProQuest One Academic</collection><collection>ProQuest One Academic UKI Edition</collection><collection>ProQuest Central China</collection><collection>Engineering Collection</collection><collection>arXiv.org</collection><jtitle>arXiv.org</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Waldherr, Max</au><au>Lundt, Nils</au><au>Martin, Klaas</au><au>Betzold, Simon</au><au>Wurdack, Matthias</au><au>Baumann, Vasilij</au><au>Estrecho, Eliezer</au><au>Nalitov, Anton</au><au>Cherotchenko, Evgenia</au><au>Cai, Hui</au><au>Ostrovskaya, Elena A</au><au>Kavokin, Alexey V</au><au>Tongay, Sefaattin</au><au>Klembt, Sebastian</au><au>Höfling, Sven</au><au>Schneider, Christian</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Observation of bosonic condensation in a hybrid monolayer MoSe2-GaAs microcavity</atitle><jtitle>arXiv.org</jtitle><date>2018-05-09</date><risdate>2018</risdate><eissn>2331-8422</eissn><abstract>Condensation of bosons into a macroscopic quantum state belongs to the most intriguing phenomena in nature. It was first realized in quantum gases of ultra-cold atoms, but more recently became accessible in open-dissipative, exciton-based solid-state systems at elevated temperatures. Semiconducting monolayer crystals have emerged as a new platform for studies of strongly bound excitons in ultimately thin materials. Here, we demonstrate the formation of a bosonic condensate driven by excitons hosted in an atomically thin layer of MoSe2, strongly coupled to light in a solid-state resonator. The structure is operated in the regime of collective strong coupling, giving rise to hybrid exciton-polariton modes composed of a Tamm-plasmon resonance, GaAs quantum well excitons and two-dimensional excitons confined in a monolayer of MoSe2. Polariton condensation in a monolayer crystal manifests by a superlinear increase of emission intensity from the hybrid polariton mode at injection powers as low as 4.8 pJ/pulse, as well as its density-dependent blueshift and a dramatic collapse of the emission linewidth as a hallmark of temporal coherence. Importantly, we observe a significant spin-polarization in the injected polariton condensate, a fingerprint of the core property of monolayer excitons subject to spin-valley locking. The observed effects clearly underpin the perspective of building novel highly non-linear valleytronic devices based on light-matter fluids, coherent bosonic light sources based on atomically thin materials, and paves the way towards studying materials with unconventional topological properties in the framework of bosonic condensation.</abstract><cop>Ithaca</cop><pub>Cornell University Library, arXiv.org</pub><doi>10.48550/arxiv.1805.03630</doi><oa>free_for_read</oa></addata></record> |
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subjects | Bosons Collapse Condensates Condensation Emission Excitons High temperature Light sources Locking Molybdenum compounds Monolayers Physics - Quantum Gases Polaritons Polarization (spin alignment) Quantum wells Solid state Ultracold atoms |
title | Observation of bosonic condensation in a hybrid monolayer MoSe2-GaAs microcavity |
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