Room-Temperature Lasing at Flatband Bound States in the Continuum

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Room-Temperature Lasing at Flatband Bound States in the Continuum
Title:
Room-Temperature Lasing at Flatband Bound States in the Continuum
Journal Title:
ACS Nano
Keywords:
Publication Date:
12 May 2025
Citation:
Do, T. T. H., Yuan, Z., Durmusoglu, E. G., Shamkhi, H. K., Valuckas, V., Zhao, C., Kuznetsov, A. I., Demir, H. V., Dang, C., Nguyen, H. S., & Ha, S. T. (2025). Room-Temperature Lasing at Flatband Bound States in the Continuum. ACS Nano. https://doi.org/10.1021/acsnano.5c01972
Abstract:
High-quality factor optical modes with a low dispersion in the momentum space are highly desirable for applications such as low-threshold lasers, strong light–matter interactions, and optical trapping. Bound states in the continuum (BICs) have recently gained attention as a promising optical cavity concept due to their theoretically infinite quality factors. However, their quality factor decreases exponentially when deviating from the BIC singularity in the momentum space, which limits their practical use. Here, we present a design concept and experimental realization of flatband BICs in a rectangular array of titanium dioxide nanopillars. By precisely engineering the interaction between four counterpropagating guided modes in the array, a nondispersive BIC band can be obtained. The flatband BIC exhibits an enhanced quality factor near the Γ-point by 2 orders of magnitude compared to that of the symmetry-protected BIC mode in a square array, along with an exceptionally high optical density of states. As a result, we achieve room-temperature lasing at the flatband BIC with a quality factor of ∼9100 and a threshold 4 times lower than that of the symmetry-protected BIC. The flatband-BIC lasing properties, such as directionality and topological charge, are also studied in detail. The concept and outstanding lasing performance of the flatband BICs presented in our work mark an important step toward efficient optical cavities and microlasers and hold great potential for advanced photonic and optoelectronic devices.
License type:
Publisher Copyright
Funding Info:
This research / project is supported by the Agency for Science, Technology and Research - Manufacturing, Trade, and Connectivity Programmatic Fund - Nanoantenna Light Emitting Devices
Grant Reference no. : M21J9b0085

This research / project is supported by the National Research Foundation - Competitive Research Programme
Grant Reference no. : NRF-CRP29-2022-0003

This research / project is supported by the Ministry of Education, Singapore - Academic Research Fund Tier 2
Grant Reference no. : MOE-T2EP50121-0012

This research / project is supported by the Ministry of Education, Singapore - Academic Research Fund Tier 1
Grant Reference no. : MOE-RG62/20, RG140/23
Description:
This document is the Accepted Manuscript version of a Published Work that appeared in final form in ACS Nano, copyright © American Chemical Society after peer review and technical editing by the publisher. To access the final edited and published work see 10.1021/acsnano.5c01972
ISSN:
1936-0851
1936-086X
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