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Publication date: May 07, 2021
We elucidate the nature of the electron-phonon interaction in the archetypal hybrid perovskite CH₃NH₃PbI₃ using ab initio many-body calculations and an exactly solvable model. We demonstrate that electrons and holes near the band edges primarily interact with three distinct groups of longitudinal-optical vibrations, in order of importance: the stretching of the Pb-I bond, the bending of the Pb-I-Pb bonds, and the libration of the organic cations. These polar phonons induce ultrafast intraband carrier relaxation over timescales of 6–30 fs and yield polaron effective masses 28% heavier than the bare band masses. These findings allow us to rationalize previous experimental observations and provide a key to understanding carrier dynamics in halide perovskites.
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Schlipf-PRL-2018.tar.gz
MD5md5:3497b3156cda1564c25a6ddbd1b29aa8
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13.9 MiB | Paper data |
README.md
MD5md5:8b36455da5fe8cb55bf65f8c373ea2a8
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1.1 KiB | Description of the contents of the archive |
2021.71 (version v1) [This version] | May 07, 2021 | DOI10.24435/materialscloud:wg-d5 |