Amplified Spontaneous Emission Realized by Cogrowing Large/Small Grains with Self‐Passivating Defects and Aligning Transition Dipoles

Abstract

This paper reports an amplified spontaneous emission (ASE) initiated by intrinsically passivating grain boundary defects and aligning transition dipoles in polycrystalline perovskite (MAPbBr3) films. The method is developed by using concurrently occurring fast and slow growths to attach small grains on surfaces of large grains toward low‐threshold ASE. This materials processing utilizes one‐step solution method of mixing two MAPbBr3 precursor (PbBr2‐based and Pb(Ac)2 · 3H2O‐based) solutions to control two subsequent growths: quickly growing large grains followed by slowly growing small grains, leading to unique emitting centers from large grains and self‐doping agents from small grains. With this design, spectral narrowing phenomenon is observed from the large grains with the full width at half maximum decreasing from 21 to 4 nm when the pumping fluence is increased from 2 to 10 µW, generating an efficient ASE. Concurrently, the observed ASE shows a linear polarization reaching 21.1%, indicating that the transition dipoles in large grains are linearly polarized with coherent interaction. Therefore, this processing strategy presents a unique method to intrinsically passivate grain boundary defects and align transition dipoles toward developing ASE by attaching small grains (serving as passivation agent) to the surfaces of large grains (functioning as light‐emitting centers).

Document Details

Document Type
Pub Defense Publication
Publication Date
Apr 29, 2019
Source ID
10.1002/adom.201900345

Entities

People

  • Bin Hu
  • Han Zou
  • Jia Zhang
  • Jiajun Qin
  • Jian Zi
  • Lei Shi
  • Miaosheng Wang
  • Stefan Haacke
  • Xiaoyuan Hou
  • Yiqiang Zhan
  • Yujie Bai

Organizations

  • Air Force Office of Scientific Research
  • Fudan University
  • Ministry of Science and Technology of the People's Republic of China
  • National Natural Science Foundation of China
  • National Science Foundation
  • Shanghai Municipal Science and Technology Commission
  • University of Strasbourg
  • University of Tennessee

Tags

Readers

  • Materials Science (Mechanical Engineering).
  • Quantum Dot Semiconductor Device Photonics and Graphene Optoelectronic Materials and THz Physics.
  • Systems Analysis and Design