Single Mode Lasing from CsPbBr3 Microcrystals Fabricated by Solid State Space‐Confined Growth

Author:

Cheng Shijia12,Qiao Zhen23,Wang Zeng4,Xiao Lian1,Das Subhasis2,Thung Yi Tian1,Yuan Zhiyi2,Ta Van Duong15,Fan Weijun2,Chen Yu‐Cheng2,Sun Handong16ORCID

Affiliation:

1. Division of Physics and Applied Physics School of Physical and Mathematical Sciences Nanyang Technological University 21 Nanyang Link Singapore 637371 Singapore

2. School of Electrical and Electronics Engineering Nanyang Technological University 50 Nanyang Ave 639798 Singapore Singapore

3. School of Optical‐Electrical and Computer Engineering, Engineering Research Center of Optical Instrument and Systems, Ministry of Education and Shanghai Key Lab of Modern Optical System University of Shanghai for Science and Technology No. 516 Jun Gong Road Shanghai 200093 China

4. Institute of Materials Research and Engineering Agency for Science Technology and Research (A*STAR) 138634 Singapore Singapore

5. Department of Optical Devices Le Quy Don Technical University 100000 Hanoi Vietnam

6. MajuLab International Joint Research Unit UMI 3654 CNRS Université Côte d'Azur Sorbonne Université National University of Singapore Nanyang Technological University 637371 Singapore Singapore

Abstract

AbstractAll‐inorganic metal halide perovskites, such as CsPbX3 (X = Br, Cl, or I), have attracted significant interest for a new generation of integrated, high‐performance optoelectronic devices. To realize the full potential of layer‐by‐layer devices, perovskite crystal thin films are preferred over crystal ingots, considering carrier loss during carrier transport. The space‐confined method is a facile way of fabricating perovskite crystal films in a geometrically confined space to break the isotropic growth. Many researchers have reported effective preparation of large‐area perovskite films using this method. However, most space‐confined methods require growth in a liquid phase (solution), which can cause uncontrollable nucleation, surface traps, and unsatisfactory device performance. In this work, a pure solid‐state space‐confined strategy to grow CsPbBr3 films for the first time without relying on solution conditions is developed. The regular shapes of CsPbBr3 films prepared by this solid‐state space‐confined strategy can function as effective multimode and single‐mode Fabry–Perot (F–P) microlasers under optical pumping. This work overcomes the challenge that the conventional space‐confined method can only be adapted to the liquid phase. It also opens a new approach for making high‐quality microlasers, which are significant for photonic integrated circuits and optoelectronic devices.

Publisher

Wiley

Subject

Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials

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