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

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81

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138

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No
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Top 10%
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Average
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Top 10%

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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
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OpenCitations Citation Count
7

Source

Cell Reports Physical Science

Volume

3

Issue

9

Start Page

101049

End Page

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CrossRef : 11

Scopus : 14

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Mendeley Readers : 10

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