Efficient Generation of Emissive Many-Body Correlations in Copper-Doped Colloidal Quantum Wells
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Date
2022
Journal Title
Journal ISSN
Volume Title
Publisher
Cell Press
Open Access Color
GOLD
Green Open Access
Yes
OpenAIRE Downloads
81
OpenAIRE Views
138
Publicly Funded
No
Abstract
Colloidal quantum wells (CQWs) provide an appealing platform to achieve emissive many-body correlations for novel optoelectronic devices, given that they act as hosts for strong carrier Coulomb interactions and present suppressed Auger recombination. However, the demonstrated high-order excitonic emission in CQWs requires ultrafast pumping with high excitation levels and can only be spec-trally resolved at the single-particle level under cryogenic condi-tions. Here, through systematic investigation using static power -dependent emission spectroscopy and transient carrier dynamics, we show that Cu-doped CdSe CQWs exhibit continuous-wave -pumped high-order excitonic emission at room temperature with a large binding energy of X64 meV. We attribute this unique behavior to dopant excitons in which the ultralong lifetime and the highly localized wavefunction facilitate the formation of many-body corre-lations. The spectrally resolved high-order excitonic emission gener-ated at power levels compatible with solar irradiation and electrical injection might pave the way for novel solution-processed solid-state devices.
Description
Yu, Junhong/0000-0001-6136-552X; Liu, Baiquan/0000-0001-9375-7683;
Keywords
High-Order Excitonic States, OPTICAL GAIN, DOTS, 530, Colloidal Quantum Wells, AUGER RECOMBINATION, Colloidal quantum wells, CDSE NANOPLATELETS, High-order excitonic states, BIEXCITON, THRESHOLDDOTS, Colloidal nanocrystals, :Electrical and electronic engineering [Engineering], Copper doping, Ultrafast spectroscopy
Turkish CoHE Thesis Center URL
Fields of Science
02 engineering and technology, 01 natural sciences, 0104 chemical sciences, 0210 nano-technology
Citation
WoS Q
Q1
Scopus Q
Q1

OpenCitations Citation Count
7
Source
Cell Reports Physical Science
Volume
3
Issue
9
Start Page
101049
End Page
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Citations
CrossRef : 11
Scopus : 14
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Mendeley Readers : 10
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