Auger-Limited Carrier Recombination and Relaxation in CdSe Colloidal Quantum Wells

J Phys Chem Lett. 2015 Mar 19;6(6):1032-6. doi: 10.1021/acs.jpclett.5b00143. Epub 2015 Mar 9.

Abstract

Using time-resolved photoluminescence spectroscopy, we show that two-exciton Auger recombination dominates carrier recombination and cooling dynamics in CdSe nanoplatelets, or colloidal quantum wells. The electron-hole recombination rate depends only on the number of electron-hole pairs present in each nanoplatelet, and is consistent with a two-exciton recombination process over a wide range of exciton densities. The carrier relaxation rate within the conduction and valence bands also depends only on the number of electron-hole pairs present, apart from an initial rapid decay, and is consistent with the cooling rate being limited by reheating due to Auger recombination processes. These Auger-limited recombination and relaxation dynamics are qualitatively different from the carrier dynamics in either colloidal quantum dots or epitaxial quantum wells.

Keywords: Auger Recombination; Biexciton; Cadmium Selenide; Carrier Cooling; Colloidal; Nanoplatelet.