Quantum‐Defect‐Minimized, Three‐Photon‐Pumped Ultralow‐Threshold Perovskite Excitonic Lasing

Author:

Sun Jianhui12ORCID,Zhang Zhedong3,Chen Yongyi4,Qiu Meng5,Jin Wei5,Ning Cun‐Zheng6,Snaith Henry J.7,Jen Alex K.‐Y.8,Lei Dangyuan29ORCID

Affiliation:

1. College of Physical Science and Technology Heilongjiang University Harbin 150080 China

2. Department of Applied Physics Hong Kong Polytechnic University Hong Kong SAR China

3. Department of Physics City University of Hong Kong 83 Tat Chee Avenue, Kowloon Hong Kong SAR China

4. State Key Laboratory of Luminescence and Applications, Changchun Institute of Optics, Fine Mechanics and Physics Chinese Academy of Sciences Changchun 130033 China

5. Department of Electrical Engineering Hong Kong Polytechnic University Hung Hom, Kowloon Hong Kong SAR China

6. School of Integrated Circuits and Optoelectronic Chips Shenzhen Technology University Shenzhen 518118 China

7. Department of Physics Clarendon Laboratory University of Oxford Oxford OX1 3PU UK

8. Department of Materials Science and Engineering Department of Chemistry and Hong Kong Institute of Clean Energy City University of Hong Kong 83 Tat Chee Avenue, Kowloon Hong Kong SAR China

9. Department of Materials Science and Engineering Center for Functional Photonics and Hong Kong Branch of National Precious Metal Material Engineering Research Center City University of Hong Kong 83 Tat Chee Avenue, Kowloon Hong Kong SAR China

Abstract

AbstractThree‐photon‐pumped (3PP) excitonic lasing in inorganic semiconductor quantum dots (QDs) is of particular importance for near‐infrared biophotonics and optical communications. However, the implementation of such lasers has been hindered severely by the required high pump thresholds. Here, 3PP excitonic lasing of all‐inorganic cesium lead bromide perovskite QDs (CsPbBr3 PQDs) embedded in a whispering‐gallery microcavity is demonstrated, and achieving a record low threshold of 3 mJ cm−2 by tuning the 3P pump energy in resonance with the S exciton state. Wavelength‐dispersive Z‐scan spectroscopy reveals that such reduced lasing threshold is attributed to the exciton resonance enhanced multiphoton absorption, which, as disclosed by the kinetics analysis of transient absorption spectroscopy (TAS), leads to the appearance of net gain at a pump fluence as low as 2.2 mJ cm−2, corresponding to an average S exciton population of 1.5. A microscopic model incorporating the quantum master equation reproduces the TAS results and provides the intrinsic parameters of biexciton relaxation for lasing. The 3PP resonant excitonic transition is the most favored multiphoton pumping process that minimizes quantum defect (6.8% of the pump photon energy) to realize optical gain at low threshold, marking a major step toward using all‐inorganic perovskite QDs for on‐chip integrated microlasers and multiphoton bioimaging.

Funder

City University of Hong Kong

Innovative Research Group Project of the National Natural Science Foundation of China

Research Grants Council, University Grants Committee

Publisher

Wiley

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