Open Access
Ultrastrong coupling between nanoparticle plasmons and cavity photons at ambient conditions
Тип публикации: Journal Article
Дата публикации: 2020-06-01
scimago Q1
wos Q1
БС1
SJR: 4.761
CiteScore: 23.4
Impact factor: 15.7
ISSN: 20411723
PubMed ID:
32483151
General Chemistry
General Biochemistry, Genetics and Molecular Biology
General Physics and Astronomy
Краткое описание
Ultrastrong coupling is a distinct regime of electromagnetic interaction that enables a rich variety of intriguing physical phenomena. Traditionally, this regime has been reached by coupling intersubband transitions of multiple quantum wells, superconducting artificial atoms, or two-dimensional electron gases to microcavity resonators. However, employing these platforms requires demanding experimental conditions such as cryogenic temperatures, strong magnetic fields, and high vacuum. Here, we use a plasmonic nanorod array positioned at the antinode of a resonant optical Fabry-Pérot microcavity to reach the ultrastrong coupling (USC) regime at ambient conditions and without the use of magnetic fields. From optical measurements we extract the value of the interaction strength over the transition energy as high as g / ω ~ 0.55, deep in the USC regime, while the nanorod array occupies only ∼4% of the cavity volume. Moreover, by comparing the resonant energies of the coupled and uncoupled systems, we indirectly observe up to ∼10% modification of the ground-state energy, which is a hallmark of USC. Our results suggest that plasmon-microcavity polaritons are a promising platform for room-temperature USC realizations in the optical and infrared ranges, and may lead to the long-sought direct visualization of the vacuum energy modification. Achieving ultrastrong coupling requires demanding experimental conditions such as cryogenic temperatures, strong magnetic fields, and high vacuum. Here, the authors use plasmon-microcavity polaritons to achieve ultrastrong coupling at ambient conditions and without the use of magnetic fields.
Найдено
Ничего не найдено, попробуйте изменить настройки фильтра.
Найдено
Ничего не найдено, попробуйте изменить настройки фильтра.
Топ-30
Журналы
|
2
4
6
8
10
12
|
|
|
Physical Review B
12 публикаций, 10.81%
|
|
|
Physical Review A
7 публикаций, 6.31%
|
|
|
Nano Letters
6 публикаций, 5.41%
|
|
|
Journal of Chemical Physics
6 публикаций, 5.41%
|
|
|
ACS Photonics
6 публикаций, 5.41%
|
|
|
Optics Express
6 публикаций, 5.41%
|
|
|
Nature Communications
4 публикации, 3.6%
|
|
|
Physical Review Research
3 публикации, 2.7%
|
|
|
Advanced Optical Materials
3 публикации, 2.7%
|
|
|
Journal of Physical Chemistry Letters
3 публикации, 2.7%
|
|
|
Nanophotonics
3 публикации, 2.7%
|
|
|
Science advances
3 публикации, 2.7%
|
|
|
Physical Review Letters
3 публикации, 2.7%
|
|
|
New Journal of Physics
2 публикации, 1.8%
|
|
|
Journal Physics D: Applied Physics
2 публикации, 1.8%
|
|
|
Laser and Photonics Reviews
2 публикации, 1.8%
|
|
|
Chemical Reviews
2 публикации, 1.8%
|
|
|
Journal of Physical Chemistry C
2 публикации, 1.8%
|
|
|
Physical Chemistry Chemical Physics
2 публикации, 1.8%
|
|
|
Nanoscale
2 публикации, 1.8%
|
|
|
Physical Review Applied
1 публикация, 0.9%
|
|
|
Journal of Applied Physics
1 публикация, 0.9%
|
|
|
Materials
1 публикация, 0.9%
|
|
|
European Physical Journal D
1 публикация, 0.9%
|
|
|
Journal of Physics Materials
1 публикация, 0.9%
|
|
|
Optics Communications
1 публикация, 0.9%
|
|
|
Angewandte Chemie - International Edition
1 публикация, 0.9%
|
|
|
Angewandte Chemie
1 публикация, 0.9%
|
|
|
Advanced Photonics Research
1 публикация, 0.9%
|
|
|
2
4
6
8
10
12
|
Издатели
|
5
10
15
20
25
30
|
|
|
American Physical Society (APS)
26 публикаций, 23.42%
|
|
|
American Chemical Society (ACS)
23 публикации, 20.72%
|
|
|
Wiley
9 публикаций, 8.11%
|
|
|
Springer Nature
9 публикаций, 8.11%
|
|
|
IOP Publishing
8 публикаций, 7.21%
|
|
|
Optica Publishing Group
8 публикаций, 7.21%
|
|
|
AIP Publishing
7 публикаций, 6.31%
|
|
|
Royal Society of Chemistry (RSC)
4 публикации, 3.6%
|
|
|
American Association for the Advancement of Science (AAAS)
4 публикации, 3.6%
|
|
|
Elsevier
3 публикации, 2.7%
|
|
|
Walter de Gruyter
3 публикации, 2.7%
|
|
|
MDPI
2 публикации, 1.8%
|
|
|
Institute of Electrical and Electronics Engineers (IEEE)
1 публикация, 0.9%
|
|
|
Proceedings of the National Academy of Sciences (PNAS)
1 публикация, 0.9%
|
|
|
5
10
15
20
25
30
|
- Мы не учитываем публикации, у которых нет DOI.
- Статистика публикаций обновляется еженедельно.
Вы ученый?
Создайте профиль, чтобы получать персональные рекомендации коллег, конференций и новых статей.
Метрики
111
Всего цитирований:
111
Цитирований c 2025:
32
(28.83%)
Цитировать
ГОСТ |
RIS |
BibTex
Цитировать
ГОСТ
Скопировать
Baranov D. G. et al. Ultrastrong coupling between nanoparticle plasmons and cavity photons at ambient conditions // Nature Communications. 2020. Vol. 11. No. 1. 2715
ГОСТ со всеми авторами (до 50)
Скопировать
Baranov D. G., Munkhbat B., Zhukova E., Bisht A., Canales A., Rousseaux B., Johansson G., Antosiewicz T. J., Shegai T. O. Ultrastrong coupling between nanoparticle plasmons and cavity photons at ambient conditions // Nature Communications. 2020. Vol. 11. No. 1. 2715
Цитировать
RIS
Скопировать
TY - JOUR
DO - 10.1038/s41467-020-16524-x
UR - https://doi.org/10.1038/s41467-020-16524-x
TI - Ultrastrong coupling between nanoparticle plasmons and cavity photons at ambient conditions
T2 - Nature Communications
AU - Baranov, Denis G.
AU - Munkhbat, Battulga
AU - Zhukova, Elena
AU - Bisht, Ankit
AU - Canales, Adriana
AU - Rousseaux, Benjamin
AU - Johansson, Göran
AU - Antosiewicz, Tomasz J.
AU - Shegai, Timur O.
PY - 2020
DA - 2020/06/01
PB - Springer Nature
IS - 1
VL - 11
PMID - 32483151
SN - 2041-1723
ER -
Цитировать
BibTex (до 50 авторов)
Скопировать
@article{2020_Baranov,
author = {Denis G. Baranov and Battulga Munkhbat and Elena Zhukova and Ankit Bisht and Adriana Canales and Benjamin Rousseaux and Göran Johansson and Tomasz J. Antosiewicz and Timur O. Shegai},
title = {Ultrastrong coupling between nanoparticle plasmons and cavity photons at ambient conditions},
journal = {Nature Communications},
year = {2020},
volume = {11},
publisher = {Springer Nature},
month = {jun},
url = {https://doi.org/10.1038/s41467-020-16524-x},
number = {1},
pages = {2715},
doi = {10.1038/s41467-020-16524-x}
}