Nonmonotonic Dependence of Auger Recombination Rate on Shell Thickness for CdSe/CdS Core/Shell Nanoplatelets
Author(s) -
Matthew Pelton,
Jordan J. Andrews,
Igor Fedin,
Dmitri V. Talapin,
Haixu Leng,
Stephen K. O’Leary
Publication year - 2017
Publication title -
nano letters
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 4.853
H-Index - 488
eISSN - 1530-6992
pISSN - 1530-6984
DOI - 10.1021/acs.nanolett.7b03294
Subject(s) - auger effect , auger , nanocrystal , quantum dot , photoluminescence , recombination , materials science , monolayer , shell (structure) , core (optical fiber) , colloid , excitation , diode , semiconductor , molecular physics , optoelectronics , atomic physics , chemistry , nanotechnology , physics , composite material , biochemistry , gene , quantum mechanics
Nonradiative Auger recombination limits the efficiency with which colloidal semiconductor nanocrystals can emit light when they are subjected to strong excitation, with important implications for the application of the nanocrystals in light-emitting diodes and lasers. This has motivated attempts to engineer the structure of the nanocrystals to minimize Auger rates. Here, we study Auger recombination rates in CdSe/CdS core/shell nanoplatelets, or colloidal quantum wells. Using time-resolved photoluminescence measurements, we show that the rate of biexcitonic Auger recombination has a nonmonotonic dependence on the shell thickness, initially decreasing, reaching a minimum for shells with thickness of 2-4 monolayers, and then increasing with further increases in the shell thickness. This nonmonotonic behavior has not been observed previously for biexcitonic recombination in quantum dots, most likely due to inhomogeneous broadening that is not present for the nanoplatelets.
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