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Disentangling Electronic and Lattice Contributions to Transient Absorption in Metal Halide Perovskites: A First-Principles Study of CH3NH3PbBr3

Lu Qiao, Ronaldo Rodrigues Pelá, Claudia Draxl

Revista con revisión por pares

En palabras de los autores

Abstract Soft lattices combined with strong electron–phonon coupling in metal halide perovskites result in a complex interplay between electronic and lattice degrees of freedom. This interplay complicates the interpretation of time-resolved spectroscopic signals, such as transient absorption spectra. Here, we develop a first-principles approach that combines a nonequilibrium extension of the Bethe-Salpeter equation with ab initio molecular dynamics to resolve the origin of transient absorption. This approach can quantitatively disentangle electronic and thermal lattice contributions across femtosecond-to-picosecond time scales. Exemplified with CH3NH3PbBr3, we find that on the femtosecond scale, both X-ray and optical transient absorption spectra are dominated by electronic contributions: Photoinduced Coulomb screening weakens the effective electron–hole interaction and blueshifts the excitonic resonances, whereas Pauli blocking is negligible in the X-ray region but non-negligible in the optical one. On the picosecond scale, thermal lattice contributions become essential, with distinct mechanisms dominating different spectral regions: Lattice vibrations lead to spectral redistribution in the X-ray transient absorption spectrum, whereas lattice expansion blueshifts the optical transient absorption spectrum.

Resultado principalEl resumen no menciona limitaciones.

Apareció: jueves, 24 de septiembre. Journal of the American Chemical Society. Revista con revisión por pares.

DOI: 10.1021/jacs.6c14114