Issue 33, 2020

Low-threshold laser medium utilizing semiconductor nanoshell quantum dots

Abstract

Colloidal semiconductor nanocrystals (NCs) represent a promising class of nanomaterials for lasing applications. Currently, one of the key challenges facing the development of high-performance NC optical gain media lies in enhancing the lifetime of biexciton populations. This usually requires the employment of charge-delocalizing particle architectures, such as core/shell NCs, nanorods, and nanoplatelets. Here, we report on a two-dimensional nanoshell quantum dot (QD) morphology that enables a strong delocalization of photoinduced charges, leading to enhanced biexciton lifetimes and low lasing thresholds. A unique combination of a large exciton volume and a smoothed potential gradient across interfaces of the reported CdSbulk/CdSe/CdSshell (core/shell/shell) nanoshell QDs results in strong suppression of Auger processes, which was manifested in this work though the observation of stable amplified stimulated emission (ASE) at low pump fluences. An extensive charge delocalization in nanoshell QDs was confirmed by transient absorption measurements, showing that the presence of a bulk-size core in CdSbulk/CdSe/CdSshell QDs reduces exciton–exciton interactions. Overall, present findings demonstrate unique advantages of the nanoshell QD architecture as a promising optical gain medium in solid-state lighting and lasing applications.

Graphical abstract: Low-threshold laser medium utilizing semiconductor nanoshell quantum dots

Supplementary files

Article information

Article type
Paper
Submitted
07 May 2020
Accepted
11 Aug 2020
First published
11 Aug 2020

Nanoscale, 2020,12, 17426-17436

Author version available

Low-threshold laser medium utilizing semiconductor nanoshell quantum dots

D. Porotnikov, B. T. Diroll, D. Harankahage, L. Obloy, M. Yang, J. Cassidy, C. Ellison, E. Miller, S. Rogers, A. N. Tarnovsky, R. D. Schaller and M. Zamkov, Nanoscale, 2020, 12, 17426 DOI: 10.1039/D0NR03582C

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