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Bosonic condensation of exciton–polaritons in an atomically thin crystal. / Anton-Solanas, Carlos; Waldherr, Maximilian; Klaas, Martin; Suchomel, Holger; Harder, Tristan H.; Cai, Hui; Sedov, Evgeny; Klembt, Sebastian; Kavokin, Alexey V.; Tongay, Sefaattin; Watanabe, Kenji; Taniguchi, Takashi; Höfling, Sven; Schneider, Christian.

In: Nature Materials, Vol. 20, No. 9, 09.2021, p. 1233-1239.

Research output: Contribution to journalArticlepeer-review

Harvard

Anton-Solanas, C, Waldherr, M, Klaas, M, Suchomel, H, Harder, TH, Cai, H, Sedov, E, Klembt, S, Kavokin, AV, Tongay, S, Watanabe, K, Taniguchi, T, Höfling, S & Schneider, C 2021, 'Bosonic condensation of exciton–polaritons in an atomically thin crystal', Nature Materials, vol. 20, no. 9, pp. 1233-1239. https://doi.org/10.1038/s41563-021-01000-8, https://doi.org/10.1038/s41563-021-01000-8

APA

Anton-Solanas, C., Waldherr, M., Klaas, M., Suchomel, H., Harder, T. H., Cai, H., Sedov, E., Klembt, S., Kavokin, A. V., Tongay, S., Watanabe, K., Taniguchi, T., Höfling, S., & Schneider, C. (2021). Bosonic condensation of exciton–polaritons in an atomically thin crystal. Nature Materials, 20(9), 1233-1239. https://doi.org/10.1038/s41563-021-01000-8, https://doi.org/10.1038/s41563-021-01000-8

Vancouver

Anton-Solanas C, Waldherr M, Klaas M, Suchomel H, Harder TH, Cai H et al. Bosonic condensation of exciton–polaritons in an atomically thin crystal. Nature Materials. 2021 Sep;20(9):1233-1239. https://doi.org/10.1038/s41563-021-01000-8, https://doi.org/10.1038/s41563-021-01000-8

Author

Anton-Solanas, Carlos ; Waldherr, Maximilian ; Klaas, Martin ; Suchomel, Holger ; Harder, Tristan H. ; Cai, Hui ; Sedov, Evgeny ; Klembt, Sebastian ; Kavokin, Alexey V. ; Tongay, Sefaattin ; Watanabe, Kenji ; Taniguchi, Takashi ; Höfling, Sven ; Schneider, Christian. / Bosonic condensation of exciton–polaritons in an atomically thin crystal. In: Nature Materials. 2021 ; Vol. 20, No. 9. pp. 1233-1239.

BibTeX

@article{87b2d77eaf884f3bbb94189bc24805ce,
title = "Bosonic condensation of exciton–polaritons in an atomically thin crystal",
abstract = "The emergence of two-dimensional crystals has revolutionized modern solid-state physics. From a fundamental point of view, the enhancement of charge carrier correlations has sparked much research activity in the transport and quantum optics communities. One of the most intriguing effects, in this regard, is the bosonic condensation and spontaneous coherence of many-particle complexes. Here we find compelling evidence of bosonic condensation of exciton–polaritons emerging from an atomically thin crystal of MoSe2 embedded in a dielectric microcavity under optical pumping at cryogenic temperatures. The formation of the condensate manifests itself in a sudden increase of luminescence intensity in a threshold-like manner, and a notable spin-polarizability in an externally applied magnetic field. Spatial coherence is mapped out via highly resolved real-space interferometry, revealing a spatially extended condensate. Our device represents a decisive step towards the implementation of coherent light-sources based on atomically thin crystals, as well as non-linear, valleytronic coherent devices.",
author = "Carlos Anton-Solanas and Maximilian Waldherr and Martin Klaas and Holger Suchomel and Harder, {Tristan H.} and Hui Cai and Evgeny Sedov and Sebastian Klembt and Kavokin, {Alexey V.} and Sefaattin Tongay and Kenji Watanabe and Takashi Taniguchi and Sven H{\"o}fling and Christian Schneider",
note = "Publisher Copyright: {\textcopyright} 2021, The Author(s), under exclusive licence to Springer Nature Limited.",
year = "2021",
month = sep,
doi = "10.1038/s41563-021-01000-8",
language = "English",
volume = "20",
pages = "1233--1239",
journal = "Nature Materials",
issn = "1476-1122",
publisher = "Nature Publishing Group",
number = "9",

}

RIS

TY - JOUR

T1 - Bosonic condensation of exciton–polaritons in an atomically thin crystal

AU - Anton-Solanas, Carlos

AU - Waldherr, Maximilian

AU - Klaas, Martin

AU - Suchomel, Holger

AU - Harder, Tristan H.

AU - Cai, Hui

AU - Sedov, Evgeny

AU - Klembt, Sebastian

AU - Kavokin, Alexey V.

AU - Tongay, Sefaattin

AU - Watanabe, Kenji

AU - Taniguchi, Takashi

AU - Höfling, Sven

AU - Schneider, Christian

N1 - Publisher Copyright: © 2021, The Author(s), under exclusive licence to Springer Nature Limited.

PY - 2021/9

Y1 - 2021/9

N2 - The emergence of two-dimensional crystals has revolutionized modern solid-state physics. From a fundamental point of view, the enhancement of charge carrier correlations has sparked much research activity in the transport and quantum optics communities. One of the most intriguing effects, in this regard, is the bosonic condensation and spontaneous coherence of many-particle complexes. Here we find compelling evidence of bosonic condensation of exciton–polaritons emerging from an atomically thin crystal of MoSe2 embedded in a dielectric microcavity under optical pumping at cryogenic temperatures. The formation of the condensate manifests itself in a sudden increase of luminescence intensity in a threshold-like manner, and a notable spin-polarizability in an externally applied magnetic field. Spatial coherence is mapped out via highly resolved real-space interferometry, revealing a spatially extended condensate. Our device represents a decisive step towards the implementation of coherent light-sources based on atomically thin crystals, as well as non-linear, valleytronic coherent devices.

AB - The emergence of two-dimensional crystals has revolutionized modern solid-state physics. From a fundamental point of view, the enhancement of charge carrier correlations has sparked much research activity in the transport and quantum optics communities. One of the most intriguing effects, in this regard, is the bosonic condensation and spontaneous coherence of many-particle complexes. Here we find compelling evidence of bosonic condensation of exciton–polaritons emerging from an atomically thin crystal of MoSe2 embedded in a dielectric microcavity under optical pumping at cryogenic temperatures. The formation of the condensate manifests itself in a sudden increase of luminescence intensity in a threshold-like manner, and a notable spin-polarizability in an externally applied magnetic field. Spatial coherence is mapped out via highly resolved real-space interferometry, revealing a spatially extended condensate. Our device represents a decisive step towards the implementation of coherent light-sources based on atomically thin crystals, as well as non-linear, valleytronic coherent devices.

UR - http://www.scopus.com/inward/record.url?scp=85105126831&partnerID=8YFLogxK

UR - https://www.mendeley.com/catalogue/7491ac6d-e8a1-33ba-a4d4-6ca4d72a0bd1/

U2 - 10.1038/s41563-021-01000-8

DO - 10.1038/s41563-021-01000-8

M3 - Article

C2 - 33958772

AN - SCOPUS:85105126831

VL - 20

SP - 1233

EP - 1239

JO - Nature Materials

JF - Nature Materials

SN - 1476-1122

IS - 9

ER -

ID: 86436262