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Switchable dual-mode nanolaser: mastering emission and invisibility through phase transition materials
Sergey Lepeshov1, Andrey Vyshnevyy2, Alex Krasnok3,4
1Department of Electrical and Photonics Engineering, DTU Electro, Technical University of Denmark , DK-2800 Kgs. Lyngby, Denmark.
Nanophotonics (Berlin, Germany)
|December 16, 2024
Summary
Researchers developed a novel nanolaser switching between lasing and cloaking states. This breakthrough, based on a semiconductor nanoparticle and phase transition material, offers new possibilities for photonic devices.
Area of Science:
- Photonics and Nanotechnology
- Materials Science
Background:
- The principle of detailed balance links emission and absorption, posing challenges for photonic devices like lasers and solar cells.
- Achieving dual functionality—efficient emission and invisibility—in a single device is crucial for advanced applications.
- Existing designs often require modifications to pumping conditions to switch between states.
Purpose of the Study:
- To propose and investigate a novel nanolaser design capable of switching between lasing and cloaking states.
- To demonstrate a reconfigurable metasurface with metaatoms exhibiting reversible lasing-cloaking transitions.
- To ensure optimal performance and explore pumping condition independence.
Main Methods:
- Utilized a semiconductor nanoparticle with gain, enveloped by a phase transition material.
- Investigated nanolaser operational characteristics, including threshold behavior and Purcell enhancement.
- Developed and analyzed a reconfigurable metasurface composed of lasing-cloaking metaatoms.
Main Results:
- Proposed a nanolaser design switching between lasing and nonscattering (cloaking) states at the same frequency without altering pumping.
- Demonstrated thresholdless laser behavior due to high beta-factor and Purcell enhancement in Mie resonance.
- Developed a reversible metasurface transitioning between lasing and nonscattering states.
Conclusions:
- The novel nanolaser design overcomes detailed balance limitations for dual-function photonic devices.
- The proposed metasurface offers reconfigurable optical properties for advanced applications.
- This work paves the way for new photonic devices with switchable emission and scattering characteristics.

