том 18 издание 27 страницы 18011-18021

Slow Hot-Exciton Cooling and Enhanced Interparticle Excitonic Coupling in HgTe Quantum Dots

Kezhou Fan 1
Kseniia A Sergeeva 2
Ksenia A Sergeeva 2
Aleksandr A Sergeev 1, 3
A. Sergeev 1, 3
Lu Zhang 4
Christopher C. S. Chan 1
Zhuo Li 5, 6, 7
XY Zhong 5, 6, 7
Junwei Liu 4
Kam Sing Wong 1
Тип публикацииJournal Article
Дата публикации2024-06-27
scimago Q1
wos Q1
БС1
SJR4.497
CiteScore24.2
Impact factor16.0
ISSN19360851, 1936086X
Краткое описание
Rapid hot-carrier/exciton cooling constitutes a major loss channel for photovoltaic efficiency. How to decelerate the hot-carrier/exciton relaxation remains a crux for achieving high-performance photovoltaic devices. Here, we demonstrate slow hot-exciton cooling that can be extended to hundreds of picoseconds in colloidal HgTe quantum dots (QDs). The energy loss rate is 1 order of magnitude smaller than bulk inorganic semiconductors, mediated by phonon bottleneck and interband biexciton Auger recombination (BAR) effects, which are both augmented at reduced QD sizes. The two effects are competitive with the emergence of multiple exciton generation. Intriguingly, BAR dominates even under low excitation fluences with a decrease in interparticle distance. Both experimental evidence and numerical evidence reveal that such efficient BAR derives from the tunneling-mediated interparticle excitonic coupling induced by wave function overlap between neighboring HgTe QDs in films. Thus, our study unveils the potential for realizing efficient hot-carrier/exciton solar cells based on HgTe QDs. Fundamentally, we reveal that the delocalized nature of quantum-confined wave function intensifies BAR. The interparticle excitonic coupling may cast light on the development of next-generation photoelectronic materials, which can retain the size-tunable confinement of colloidal semiconductor QDs while simultaneously maintaining high mobilities and conductivities typical for bulk semiconductor materials.
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Journal of Physical Chemistry Letters
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ACS Nano
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Physical Chemistry Chemical Physics
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American Chemical Society (ACS)
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Wiley
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Fan K. et al. Slow Hot-Exciton Cooling and Enhanced Interparticle Excitonic Coupling in HgTe Quantum Dots // ACS Nano. 2024. Vol. 18. No. 27. pp. 18011-18021.
ГОСТ со всеми авторами (до 50) Скопировать
Fan K., Sergeeva K. A., Sergeeva K. A., Sergeev A. A., Sergeev A., Zhang L., Chan C. C. S., Li Z., Zhong X., Kershaw S. V., Liu J., Rogach A. L., Wong K. S. Slow Hot-Exciton Cooling and Enhanced Interparticle Excitonic Coupling in HgTe Quantum Dots // ACS Nano. 2024. Vol. 18. No. 27. pp. 18011-18021.
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TY - JOUR
DO - 10.1021/acsnano.4c05061
UR - https://pubs.acs.org/doi/10.1021/acsnano.4c05061
TI - Slow Hot-Exciton Cooling and Enhanced Interparticle Excitonic Coupling in HgTe Quantum Dots
T2 - ACS Nano
AU - Fan, Kezhou
AU - Sergeeva, Kseniia A
AU - Sergeeva, Ksenia A
AU - Sergeev, Aleksandr A
AU - Sergeev, A.
AU - Zhang, Lu
AU - Chan, Christopher C. S.
AU - Li, Zhuo
AU - Zhong, XY
AU - Kershaw, Stephen V.
AU - Liu, Junwei
AU - Rogach, Andrey L.
AU - Wong, Kam Sing
PY - 2024
DA - 2024/06/27
PB - American Chemical Society (ACS)
SP - 18011-18021
IS - 27
VL - 18
PMID - 38935537
SN - 1936-0851
SN - 1936-086X
ER -
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@article{2024_Fan,
author = {Kezhou Fan and Kseniia A Sergeeva and Ksenia A Sergeeva and Aleksandr A Sergeev and A. Sergeev and Lu Zhang and Christopher C. S. Chan and Zhuo Li and XY Zhong and Stephen V. Kershaw and Junwei Liu and Andrey L. Rogach and Kam Sing Wong},
title = {Slow Hot-Exciton Cooling and Enhanced Interparticle Excitonic Coupling in HgTe Quantum Dots},
journal = {ACS Nano},
year = {2024},
volume = {18},
publisher = {American Chemical Society (ACS)},
month = {jun},
url = {https://pubs.acs.org/doi/10.1021/acsnano.4c05061},
number = {27},
pages = {18011--18021},
doi = {10.1021/acsnano.4c05061}
}
MLA
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Fan, Kezhou, et al. “Slow Hot-Exciton Cooling and Enhanced Interparticle Excitonic Coupling in HgTe Quantum Dots.” ACS Nano, vol. 18, no. 27, Jun. 2024, pp. 18011-18021. https://pubs.acs.org/doi/10.1021/acsnano.4c05061.