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Detection of a Coherent Excitonic State in the Layered Semiconductor BiI3. / Gosetti, V; Cervantes-Villanueva, Jorge; Sangalli, D; Molina-Sánchez, A; Агекян, Вадим Фадеевич; Giannetti, C; Sangaletti, L.; Mor, S; Pagliara, S.

в: ACS Photonics, Том 11, № 6, 04.06.2024, стр. 2513-2520.

Результаты исследований: Научные публикации в периодических изданияхстатьяРецензирование

Harvard

Gosetti, V, Cervantes-Villanueva, J, Sangalli, D, Molina-Sánchez, A, Агекян, ВФ, Giannetti, C, Sangaletti, L, Mor, S & Pagliara, S 2024, 'Detection of a Coherent Excitonic State in the Layered Semiconductor BiI3', ACS Photonics, Том. 11, № 6, стр. 2513-2520. https://doi.org/10.1021/acsphotonics.4c00520

APA

Gosetti, V., Cervantes-Villanueva, J., Sangalli, D., Molina-Sánchez, A., Агекян, В. Ф., Giannetti, C., Sangaletti, L., Mor, S., & Pagliara, S. (2024). Detection of a Coherent Excitonic State in the Layered Semiconductor BiI3. ACS Photonics, 11(6), 2513-2520. https://doi.org/10.1021/acsphotonics.4c00520

Vancouver

Gosetti V, Cervantes-Villanueva J, Sangalli D, Molina-Sánchez A, Агекян ВФ, Giannetti C и пр. Detection of a Coherent Excitonic State in the Layered Semiconductor BiI3. ACS Photonics. 2024 Июнь 4;11(6):2513-2520. https://doi.org/10.1021/acsphotonics.4c00520

Author

Gosetti, V ; Cervantes-Villanueva, Jorge ; Sangalli, D ; Molina-Sánchez, A ; Агекян, Вадим Фадеевич ; Giannetti, C ; Sangaletti, L. ; Mor, S ; Pagliara, S. / Detection of a Coherent Excitonic State in the Layered Semiconductor BiI3. в: ACS Photonics. 2024 ; Том 11, № 6. стр. 2513-2520.

BibTeX

@article{ee7e879a848e4330abcd73d216b172f9,
title = "Detection of a Coherent Excitonic State in the Layered Semiconductor BiI3",
abstract = "The measurement and manipulation of the coherent dynamics of excitonic states constitute a forefront research challenge in semiconductor optics and quantum-coherence-based protocols for optoelectronic technologies. Layered semiconductors have emerged as an ideal platform for the study of exciton dynamics with accessible and technologically relevant energy and time scales. Here, we investigate the subpicosecond exciton dynamics in a van der Waals semiconductor upon quasi-resonant excitation and achieve to single out an incipient coherent excitonic state. Combining broad-band transient reflectance spectroscopy and simulations based on many-body perturbation theory, we reveal a transient enhancement of the excitonic line intensity that originates from photoinduced coherent polarization that is phase-locked with the interacting electromagnetic field. This finding allows us to define the spectral signature of a coherent excitonic state and to experimentally track the dynamical crossover from coherent to incoherent exciton, unlocking the prospective optical control of an exciton population on the intrinsic quantum-coherence time scale.",
keywords = "density functional theory, exciton dynamics, layered semiconductors, ultrafast optical spectroscopy",
author = "V Gosetti and Jorge Cervantes-Villanueva and D Sangalli and A Molina-S{\'a}nchez and Агекян, {Вадим Фадеевич} and C Giannetti and L. Sangaletti and S Mor and S Pagliara",
year = "2024",
month = jun,
day = "4",
doi = "10.1021/acsphotonics.4c00520",
language = "English",
volume = "11",
pages = "2513--2520",
journal = "ACS Photonics",
issn = "2330-4022",
publisher = "American Chemical Society",
number = "6",

}

RIS

TY - JOUR

T1 - Detection of a Coherent Excitonic State in the Layered Semiconductor BiI3

AU - Gosetti, V

AU - Cervantes-Villanueva, Jorge

AU - Sangalli, D

AU - Molina-Sánchez, A

AU - Агекян, Вадим Фадеевич

AU - Giannetti, C

AU - Sangaletti, L.

AU - Mor, S

AU - Pagliara, S

PY - 2024/6/4

Y1 - 2024/6/4

N2 - The measurement and manipulation of the coherent dynamics of excitonic states constitute a forefront research challenge in semiconductor optics and quantum-coherence-based protocols for optoelectronic technologies. Layered semiconductors have emerged as an ideal platform for the study of exciton dynamics with accessible and technologically relevant energy and time scales. Here, we investigate the subpicosecond exciton dynamics in a van der Waals semiconductor upon quasi-resonant excitation and achieve to single out an incipient coherent excitonic state. Combining broad-band transient reflectance spectroscopy and simulations based on many-body perturbation theory, we reveal a transient enhancement of the excitonic line intensity that originates from photoinduced coherent polarization that is phase-locked with the interacting electromagnetic field. This finding allows us to define the spectral signature of a coherent excitonic state and to experimentally track the dynamical crossover from coherent to incoherent exciton, unlocking the prospective optical control of an exciton population on the intrinsic quantum-coherence time scale.

AB - The measurement and manipulation of the coherent dynamics of excitonic states constitute a forefront research challenge in semiconductor optics and quantum-coherence-based protocols for optoelectronic technologies. Layered semiconductors have emerged as an ideal platform for the study of exciton dynamics with accessible and technologically relevant energy and time scales. Here, we investigate the subpicosecond exciton dynamics in a van der Waals semiconductor upon quasi-resonant excitation and achieve to single out an incipient coherent excitonic state. Combining broad-band transient reflectance spectroscopy and simulations based on many-body perturbation theory, we reveal a transient enhancement of the excitonic line intensity that originates from photoinduced coherent polarization that is phase-locked with the interacting electromagnetic field. This finding allows us to define the spectral signature of a coherent excitonic state and to experimentally track the dynamical crossover from coherent to incoherent exciton, unlocking the prospective optical control of an exciton population on the intrinsic quantum-coherence time scale.

KW - density functional theory

KW - exciton dynamics

KW - layered semiconductors

KW - ultrafast optical spectroscopy

UR - https://www.mendeley.com/catalogue/f9863822-d704-3c3d-904c-bc113a1b1db0/

U2 - 10.1021/acsphotonics.4c00520

DO - 10.1021/acsphotonics.4c00520

M3 - Article

VL - 11

SP - 2513

EP - 2520

JO - ACS Photonics

JF - ACS Photonics

SN - 2330-4022

IS - 6

ER -

ID: 123901412