Effect of Interfacial Potential on Elementary Exciton Processes in InP-based Core/shell Quantum Dots

01 December 2023, Version 1
This content is a preprint and has not undergone peer review at the time of posting.

Abstract

Suppression of Auger recombination rate in semiconductor quantum dots (QDs) is essential for various applications such as LEDs and lasers. We investigate the effect of interfacial potential on Auger recombination processes in InP-based core/shell quantum dots (c/s QDs) using femtosecond transient absorption spectroscopy (fs-TAS). We have synthesized c/s QDs with diverse interfacial potentials: steep ones (InP/ZnS and InP/ZnSe QDs) and a smoothed counterpart (InP/ZnSexS1-x/ZnS QDs). The steady-state absorption and luminescence spectra obtained from aliquots extracted during the synthesis of InP/ZnSexS1-x/ZnS QDs and the EDS line profile revealed the formation of a compositional gradient shell (smoothed interfacial potential). The Auger recombination processes in InP/ZnSexS1-x/ZnS QDs QDs were ~ 8 times slower than those in InP/ZnS QDs in the same volume. These suppressions can be explained by the effective electron wavefunction penetration from the core into the shell and reduced carrier momentum in the final state resulted from the smoothed interfacial potential. These findings provide an important guideline for the rational design of the interfacial potentials in InP-based c/s QDs for various applications such as LED and laser devices.

Keywords

Colloidal Quantum Dots
Elementary Exciton Process
Auger Recombination

Supplementary materials

Title
Description
Actions
Title
Supporting Information
Description
Supporting Information
Actions

Comments

Comments are not moderated before they are posted, but they can be removed by the site moderators if they are found to be in contravention of our Commenting Policy [opens in a new tab] - please read this policy before you post. Comments should be used for scholarly discussion of the content in question. You can find more information about how to use the commenting feature here [opens in a new tab] .
This site is protected by reCAPTCHA and the Google Privacy Policy [opens in a new tab] and Terms of Service [opens in a new tab] apply.