Triple Threshold Transitions and Strong Polariton Interaction in 2D Layered Metal-Organic Framework Microplates.

Kottilil, Dileep; Gupta, Mayank; Lu, Shunbin; Babusenan, Anu; Ji, Wei · Adv Mater · 2023

basic_science · Level V

Where this comes from

Abstract

Room-temperature interaction between light-matter hybrid particles such as exciton-polaritons under extremely low-pump plays a crucial role in future coherent quantum light sources. However, the practical and scalable realization of coherent quantum light sources operating under low-pump remains a challenge because of the insufficient polariton interaction strength. Here, at room temperature, a very large polariton interaction strength is demonstrated, g ≈ 128 ± 21 µeV µm<sup>2</sup> realized in a 2D nanolayered metal-organic framework (MOF). As a result, a polariton lasing at an extremely low pump fluence of P<sub>1</sub>  ≈ 0.01 ± 0.0015 µJ cm<sup>-2</sup> (first threshold) is observed. Interestingly, as pump fluence increases to P<sub>2</sub>  ≈ 0.031 ± 0.003 µJ cm<sup>-2</sup> (second threshold), a spontaneous transition to a polariton breakdown region occurs, which has not been reported before. Finally, an ordinary photon lasing occurs at P<sub>3</sub>  ≈ 0.11 ± 0.077 µJ cm<sup>-2</sup> (third threshold), or above. These experiments and the theoretical model reveal new insights into the transition mechanisms characterized by three distinct optical regions. This work introduces MOF as a new type of quantum material, with naturally formed polariton cavities, that is a cost-effective and scalable solution to build microscale coherent quantum light sources and polaritonic devices.