Exciton polariton condensation from bound states in the continuum at room temperature
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Published:2024-04-18
Issue:1
Volume:15
Page:
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ISSN:2041-1723
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Container-title:Nature Communications
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language:en
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Short-container-title:Nat Commun
Author:
Wu Xianxin, Zhang Shuai, Song Jiepeng, Deng Xinyi, Du Wenna, Zeng Xin, Zhang Yuyang, Zhang Zhiyong, Chen Yuzhong, Wang YubinORCID, Jiang Chuanxiu, Zhong Yangguang, Wu BoORCID, Zhu Zhuoya, Liang Yin, Zhang QingORCID, Xiong QihuaORCID, Liu XinfengORCID
Abstract
AbstractExciton–polaritons (polaritons) resulting from the strong exciton–photon interaction stimulates the development of novel low-threshold coherent light sources to circumvent the ever-increasing energy demands of optical communications1–3. Polaritons from bound states in the continuum (BICs) are promising for Bose–Einstein condensation owing to their theoretically infinite quality factors, which provide prolonged lifetimes and benefit the polariton accumulations4–7. However, BIC polariton condensation remains limited to cryogenic temperatures ascribed to the small exciton binding energies of conventional material platforms. Herein, we demonstrated room-temperature BIC polariton condensation in perovskite photonic crystal lattices. BIC polariton condensation was demonstrated at the vicinity of the saddle point of polariton dispersion that generates directional vortex beam emission with long-range coherence. We also explore the peculiar switching effect among the miniaturized BIC polariton modes through effective polariton−polariton scattering. Our work paves the way for the practical implementation of BIC polariton condensates for integrated photonic and topological circuits.
Funder
National Natural Science Foundation of China China Postdoctoral Science Foundation Natural Science Foundation of Beijing Municipality
Publisher
Springer Science and Business Media LLC
Reference51 articles.
1. Kasprzak, J. et al. Bose–Einstein condensation of exciton polaritons. Nature 443, 409–414 (2006). 2. Deng, H., Haug, H. & Yamamoto, Y. Exciton-polariton Bose-Einstein condensation. Rev. Mod. Phys. 82, 1489–1537 (2010). 3. Byrnes, T., Kim, N. Y. & Yamamoto, Y. Exciton–polariton condensates. Nat. Phys. 10, 803–813 (2014). 4. Zhen, B., Hsu, C. W., Lu, L., Stone, A. D. & Soljacic, M. Topological nature of optical bound states in the continuum. Phys. Rev. Lett. 113, 257401 (2014). 5. Hsu, C. W., Zhen, B., Stone, A. D., Joannopoulos, J. D. & Soljačić, M. Bound states in the continuum. Nat. Rev. Mater. 1, 1–13 (2016).
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