Exciton Binding Energy and the Nature of Emissive States in Organometal Halide Perovskites

J Phys Chem Lett. 2015 Aug 6;6(15):2969-75. doi: 10.1021/acs.jpclett.5b01252. Epub 2015 Jul 20.

Abstract

Characteristics of nanoscale materials are often different from the corresponding bulk properties providing new, sometimes unexpected, opportunities for applications. Here we investigate the properties of 8 nm colloidal nanoparticles of MAPbBr3 perovskites and contrast them to the ones of large microcrystallites representing a bulk. X-ray spectroscopies provide an exciton binding energy of 0.32 ± 0.10 eV in the nanoparticles. This is 5 times higher than the value of bulk crystals (0.084 ± 0.010 eV), and readily explains the high fluorescence quantum yield in nanoparticles. In the bulk, at high excitation concentrations, the fluorescence intensity has quadratic behavior following the Saha-Langmuir model due to the nongeminate recombination of charges forming the emissive exciton states. In the nanoparticles, a linear dependence is observed since the excitation concentration per particle is significantly less than one. Even the bulk shows linear emission intensity dependence at lower excitation concentrations. In this case, the average excitation spacing becomes larger than the carrier diffusion length suppressing the nongeminate recombination. From these considerations we obtain the charge carrier diffusion length in MAPbBr3 of 100 nm.

Keywords: exciton binding energy; fluorescence; nanoparticles; perovskites; photoelectron spectroscopy.

Publication types

  • Research Support, Non-U.S. Gov't
  • Research Support, U.S. Gov't, Non-P.H.S.

MeSH terms

  • Calcium Compounds / chemistry*
  • Luminescent Measurements
  • Nanoparticles / chemistry
  • Oxides / chemistry*
  • Photoelectron Spectroscopy
  • Photons
  • Titanium / chemistry*

Substances

  • Calcium Compounds
  • Oxides
  • perovskite
  • Titanium