Photoinduced Single- and Multiple-Electron Dynamics Processes Enhanced by Quantum Confinement in Lead Halide Perovskite Quantum Dots
Author(s) -
Dayton J. Vogel,
Andrei Kryjevski,
Talgat M. Inerbaev,
Dmitri S. Kilin
Publication year - 2017
Publication title -
the journal of physical chemistry letters
Language(s) - English
Resource type - Journals
ISSN - 1948-7185
DOI - 10.1021/acs.jpclett.6b03048
Subject(s) - photoexcitation , quantum dot , picosecond , nanosecond , perovskite (structure) , electron , femtosecond , exciton , chemistry , atomic physics , materials science , molecular physics , physics , optoelectronics , condensed matter physics , optics , excited state , laser , quantum mechanics , crystallography
Methylammonium lead iodide perovskite (MAPbI 3 ) is a promising material for photovoltaic devices. A modification of MAPbI 3 into confined nanostructures is expected to further increase efficiency of solar energy conversion. Photoexcited dynamic processes in a MAPbI 3 quantum dot (QD) have been modeled by many-body perturbation theory and nonadiabatic dynamics. A photoexcitation is followed by either exciton cooling (EC), its radiative (RR) or nonradiative recombination (NRR), or multiexciton generation (MEG) processes. Computed times of these processes fall in the order of MEG < EC < RR < NRR, where MEG is on the order of a few femtoseconds, EC is in the picosecond range, while RR and NRR are on the order of nanoseconds. Computed time scales indicate which electronic transition pathways can contribute to increase in charge collection efficiency. Simulated mechanisms of relaxation and their rates show that quantum confinement promotes MEG in MAPbI 3 QDs.
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