Temperature-Dependent Electroabsorption Spectra And Exciton Binding Energy In A Perovskite Ch3nh3pbi3 Nanocrystalline Film

ACS APPLIED ENERGY MATERIALS(2020)

Cited 7|Views1
No score
Abstract
Temperature-dependent electroabsorption (E-A) spectra of methylammonium lead tri-iodide (MAPbI(3)) solid film, which result from the quadratic Stark effect of the exciton absorption band, have been analyzed with an integral method. The change in the electric dipole moment (Delta mu) and polarizability (Delta alpha) following exciton absorption was determined at each temperature; the absorption profile was separated into an exciton band and a continuum band caused by a transition from the valence band to the conduction band, and the position and the linewidth of the exciton absorption band were determined at each temperature. As the temperature decreased, a phase transition occurred from a tetragonal phase to an orthorhombic phase; the temperature dependence of Delta mu and Delta alpha differed greatly between the two phases. We have evaluated the exciton binding energy (E-B) of MAPbI(3) polycrystalline film with the following three methods: (1) fitting the temperature-dependent absorption profile; (2) fitting the temperature-dependent linewidth of the exciton absorption profile; and (3) fitting the photoluminescence intensity as a function of temperature. The E-B values thus determined for samples fabricated with the same procedure are compared. Our estimated binding energies for an exciton of a MAPbI(3) nanocrystalline film are also compared with those reported in the literature.
More
Translated text
Key words
temperature-dependent electroabsorption spectra, integral method analysis, methylammonium lead iodide perovskite, exciton binding energy, perovskite solar cells
AI Read Science
Must-Reading Tree
Example
Generate MRT to find the research sequence of this paper
Chat Paper
Summary is being generated by the instructions you defined