TY - JOUR
T1 - All-optical control of exciton flow in a colloidal quantum well complex
AU - Yu, Junhong
AU - Sharma, Manoj
AU - Sharma, Ashma
AU - Delikanli, Savas
AU - Volkan Demir, Hilmi
AU - Dang, Cuong
N1 - Funding Information:
We thank Philip Anthony Surman for the insightful discussion. We also thank the Singapore Ministry of Education for financial support through the AcRF Tier1 grant (MOE2019-T1-002-087) and the Singapore National Research Foundation for financial support under the Program of NRF-NRFI-2016-08. H.V.D. gratefully acknowledges additional financial support from the TUBA.
Publisher Copyright:
© 2020, The Author(s).
PY - 2020/2/27
Y1 - 2020/2/27
N2 - Excitonics, an alternative to romising for processing information since semiconductor electronics is rapidly approaching the end of Moore’s law. Currently, the development of excitonic devices, where exciton flow is controlled, is mainly focused on electric-field modulation or exciton polaritons in high-Q cavities. Here, we show an all-optical strategy to manipulate the exciton flow in a binary colloidal quantum well complex through mediation of the Förster resonance energy transfer (FRET) by stimulated emission. In the spontaneous emission regime, FRET naturally occurs between a donor and an acceptor. In contrast, upon stronger excitation, the ultrafast consumption of excitons by stimulated emission effectively engineers the excitonic flow from the donors to the acceptors. Specifically, the acceptors’ stimulated emission significantly accelerates the exciton flow, while the donors’ stimulated emission almost stops this process. On this basis, a FRET-coupled rate equation model is derived to understand the controllable exciton flow using the density of the excited donors and the unexcited acceptors. The results will provide an effective all-optical route for realizing excitonic devices under room temperature operation.
AB - Excitonics, an alternative to romising for processing information since semiconductor electronics is rapidly approaching the end of Moore’s law. Currently, the development of excitonic devices, where exciton flow is controlled, is mainly focused on electric-field modulation or exciton polaritons in high-Q cavities. Here, we show an all-optical strategy to manipulate the exciton flow in a binary colloidal quantum well complex through mediation of the Förster resonance energy transfer (FRET) by stimulated emission. In the spontaneous emission regime, FRET naturally occurs between a donor and an acceptor. In contrast, upon stronger excitation, the ultrafast consumption of excitons by stimulated emission effectively engineers the excitonic flow from the donors to the acceptors. Specifically, the acceptors’ stimulated emission significantly accelerates the exciton flow, while the donors’ stimulated emission almost stops this process. On this basis, a FRET-coupled rate equation model is derived to understand the controllable exciton flow using the density of the excited donors and the unexcited acceptors. The results will provide an effective all-optical route for realizing excitonic devices under room temperature operation.
UR - http://www.scopus.com/inward/record.url?scp=85080148606&partnerID=8YFLogxK
U2 - 10.1038/s41377-020-0262-7
DO - 10.1038/s41377-020-0262-7
M3 - Article
AN - SCOPUS:85080148606
SN - 2095-5545
VL - 9
JO - Light: Science and Applications
JF - Light: Science and Applications
IS - 1
M1 - 27
ER -