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      Low‐Threshold Bound State in the Continuum Lasers in Hybrid Lattice Resonance Metasurfaces

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          Abstract

          Bound states in the continuum (BICs) have attracted considerable research attention due to their infinite quality factor ( Q‐factor) and extremely localized fields, which drastically enhances light–matter interactions and yields high potential in topological photonics and quantum optics. In this study, the room temperature directional lasing normal to a BIC metasurface is demonstrated with hybrid surface lattice resonances. Compared to the plasmonic nanolasers, the BIC metasurface lasers possess directional radiation and a larger emission volume. The high Q‐factor resonance of BIC metasurface overcomes the limitation of a large mode volume in achieving low‐threshold lasing. In addition, a design rule is proposed to prevent the occurrence of wavelength shift when the Q‐factor changes; thus, the lasing thresholds for different BIC metasurfaces can be compared. In this work, the high localization ability of BICs is used to achieve the low lasing threshold (1.25 nJ) at the room temperature. The “light in–light out” diagram of the aforementioned laser based on simulations and experiments exhibits a large spontaneous emission coupling factor ( β = 0.9) and the S‐curve. The device developed in this study can be used in various applications, such as quantum emitters, optical sensing, nonlinear optics, and topological states engineering.

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          Bound states in the continuum

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            Asymmetric Metasurfaces with High- Q Resonances Governed by Bound States in the Continuum

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              Temporal coupled-mode theory for the Fano resonance in optical resonators

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                Author and article information

                Contributors
                (View ORCID Profile)
                Journal
                Laser & Photonics Reviews
                Laser & Photonics Reviews
                Wiley
                1863-8880
                1863-8899
                October 2021
                August 16 2021
                October 2021
                : 15
                : 10
                Affiliations
                [1 ] Institute of Photonic System College of Photonics National Chiao Tung University and National Yang Ming Chiao Tung University No. 301, Gaofa 3rd Rd., Guiren Dist. Tainan 71150 Taiwan
                [2 ] Department of Photonics College of Electrical and Computer Engineering National Chiao Tung University and National Yang Ming Chiao Tung University No. 1001 University Road, East Dist. Hsinchu 30010 Taiwan
                [3 ] Kirensky Institute of Physics Federal Research Center KSC SB RAS No. 50 Akademgorodok st. Krasnoyarsk 660036 Russia
                [4 ] Institute of Engineering Physics and Radio Electronics Siberian Federal University No. 79 Svobodny pr. Krasnoyarsk 660041 Russia
                [5 ] Institute of Lighting and Energy Photonics College of Photonics National Chiao Tung University and National Yang Ming Chiao Tung University No. 301, Gaofa 3rd Rd., Guiren Dist. Tainan 71150 Taiwan
                [6 ] Department of Mechanical and Mechatronic Engineering National Taiwan Ocean University No. 2, Beining Rd., Zhongzheng Dist. Keelung 202301 Taiwan
                [7 ] Institute and Undergraduate Program of Electro‐Optical Engineering National Taiwan Normal University No. 88, Section 4, Tingchou Rd. Taipei 11677 Taiwan
                [8 ] Micro/Nano Device Inspection and Research Center National Taiwan Normal University No. 162, Section 1, Heping E. Rd. Taipei 106 Taiwan
                [9 ] Institute of Imaging and Biomedical Photonics College of Photonics National Chiao Tung University and National Yang Ming Chiao Tung University No. 301, Gaofa 3rd Rd., Guiren Dist. Tainan 71150 Taiwan
                Article
                10.1002/lpor.202100118
                039479bd-b386-4412-9966-b32ef9ffee3f
                © 2021

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