04 / Vibrational spectroscopy · Hybrid perovskites

Mapping local strain in MAPI

Which Raman and infrared modes can provide a reliable, spatially resolved measurement of local strain in CH₃NH₃PbI₃?

TOC graphic for Stress effects on vibrational spectra of a cubic hybrid perovskite

J. Phys. Chem. C · 2020

First-author paper

Overview

Inhomogeneous strain can affect carrier mobility, recombination, degradation, and photovoltaic performance, yet it is difficult to measure locally. This work uses first-principles calculations to identify strain-sensitive vibrational modes in pseudo-cubic methylammonium lead iodide and provides calibration curves for Raman or infrared microscopy.

Key resultFour modes near 86, 97, 1457, and 1537 cm⁻¹ provide practical local-strain probes for MAPI.

My contributionFirst-principles phonon calculations, strain calibration, mode analysis, and spectroscopy interpretation.

Which Raman and infrared modes can provide a reliable, spatially resolved measurement of local strain in CH₃NH₃PbI₃?

Approach

  • Density-functional theory and density-functional perturbation theory in Quantum ESPRESSO
  • Uniaxial tensile and compressive strain along three crystallographic directions
  • Dynamical-matrix and phonon-eigenvector analysis
  • Raman and infrared intensities, frequency–strain calibration, and mode Grüneisen parameters

What emerged

  • Four modes near 86, 97, 1457, and 1537 cm⁻¹ were identified as promising probes of local strain.
  • Linear shifts occur when the dynamical matrix changes without substantial change in the mode eigenvector; parabolic and irregular behavior reflect stronger eigenvector or structural changes.
  • Strain changes Pb–I bond lengths and Pb–I–Pb angles, rotates the organic cation, and reveals lattice buckling.
  • Directional Grüneisen parameters indicate anharmonicity and suggest unusual negative thermal expansion along [001].

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