Towards zero-threshold optical gain using charged semiconductor quantum dots
Author(s) -
Kaifeng Wu,
YoungShin Park,
Jaehoon Lim,
Victor I. Klimov
Publication year - 2017
Publication title -
nature nanotechnology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 14.308
H-Index - 353
eISSN - 1748-3395
pISSN - 1748-3387
DOI - 10.1038/nnano.2017.189
Subject(s) - lasing threshold , quantum dot , auger effect , quantum dot laser , optoelectronics , exciton , spontaneous emission , semiconductor , electron , physics , biexciton , quantum tunnelling , materials science , laser , active laser medium , atomic physics , semiconductor laser theory , auger , condensed matter physics , optics , laser power scaling , quantum mechanics
Colloidal semiconductor quantum dots are attractive materials for the realization of solution-processable lasers. However, their applications as optical-gain media are complicated by a non-unity degeneracy of band-edge states, because of which multiexcitons are required to achieve the lasing regime. This increases the lasing thresholds and leads to very short optical gain lifetimes limited by nonradiative Auger recombination. Here, we show that these problems can be at least partially resolved by employing not neutral but negatively charged quantum dots. By applying photodoping to specially engineered quantum dots with impeded Auger decay, we demonstrate a considerable reduction of the optical gain threshold due to suppression of ground-state absorption by pre-existing carriers. Moreover, by injecting approximately one electron per dot on average, we achieve a more than twofold reduction in the amplified spontaneous emission threshold, bringing it to the sub-single-exciton level. These measurements indicate the feasibility of 'zero-threshold' gain achievable by completely blocking the band-edge state with two electrons.
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