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Controlling excitons in the quantum tunnelling regime in a hybrid plasmonic/2D semiconductor interface. / Ferrera, M. ; Rahaman, Mahfujur; Sanders, B. C. и др.

в: Applied Physics Reviews, Том 9, № 3, 031401, 01.09.2022.

Результаты исследований: Научные публикации в периодических изданияхстатьяРецензирование

Harvard

Ferrera, M, Rahaman, M, Sanders, BC, Pan, Y, Milekhin, I, Gemming, S, Alabastri, A, Bisio, F, Canepa, M & Zahn, DRT 2022, 'Controlling excitons in the quantum tunnelling regime in a hybrid plasmonic/2D semiconductor interface', Applied Physics Reviews, Том. 9, № 3, 031401. https://doi.org/10.1063/5.0078068

APA

Ferrera, M., Rahaman, M., Sanders, B. C., Pan, Y., Milekhin, I., Gemming, S., Alabastri, A., Bisio, F., Canepa, M., & Zahn, D. R. T. (2022). Controlling excitons in the quantum tunnelling regime in a hybrid plasmonic/2D semiconductor interface. Applied Physics Reviews, 9(3), [031401]. https://doi.org/10.1063/5.0078068

Vancouver

Ferrera M, Rahaman M, Sanders BC, Pan Y, Milekhin I, Gemming S и др. Controlling excitons in the quantum tunnelling regime in a hybrid plasmonic/2D semiconductor interface. Applied Physics Reviews. 2022 сент. 1;9(3):031401. doi: 10.1063/5.0078068

Author

Ferrera, M. ; Rahaman, Mahfujur ; Sanders, B. C. и др. / Controlling excitons in the quantum tunnelling regime in a hybrid plasmonic/2D semiconductor interface. в: Applied Physics Reviews. 2022 ; Том 9, № 3.

BibTeX

@article{6433dc7ed3c04d2190ebf9cf0317f43d,
title = "Controlling excitons in the quantum tunnelling regime in a hybrid plasmonic/2D semiconductor interface",
abstract = "The electromagnetic field confinement and amplification typical of nano-sized metallic objects supporting localized surface plasmon resonances, i.e., light-induced collective electronic oscillations, can significantly strengthen the interaction of light with atomically thin transition metal dichalcogenides. In view of the realization of plasmon-enhanced devices, it is crucial to investigate the effects induced by light confinement within metallic nanostructures on the excitonic properties of these materials at the nanoscale. Here, we exploit tip-enhanced photoluminescence spectroscopy to locally control the excitons of monolayer molybdenum disulfide (MoS2) coupled with gold nanotriangles in the quantum tunneling regime. The spatial resolution of 10 nm in the tip-enhanced photoluminescence measurements made it possible to image the light-emission related properties of monolayer MoS2 across one single metallic nanostructure and to investigate the effect of the plasmonic enhancement on its photoluminescence peak. Moreover, by taking advantage of the degree of freedom given by the tuning of the tip-sample distance; it was possible to probe the effect of the plasmonic pico-cavity size on the photoluminescence quenching rate of monolayer MoS2.",
author = "M. Ferrera and Mahfujur Rahaman and Sanders, {B. C.} and Yang Pan and Ilya Milekhin and Sibylle Gemming and A. Alabastri and F. Bisio and M. Canepa and Zahn, {Dietrich R.T.}",
note = "ACKNOWLEDGMENTS: M.R., I.M., Y.P., and D.R.T.Z. acknowledge Deutsche Forschungsgemeinschaft (DFG, German Research Foundation) for research funding via Nos. ZA 146/44-1, ZA 146/43-1, and ZA 146/47-1. M.F. acknowledges support from Deutscher Akademischer Austauschdienst (DAAD) for short-term grants, 2021 (No. 57552336).",
year = "2022",
month = sep,
day = "1",
doi = "10.1063/5.0078068",
language = "English",
volume = "9",
journal = "Applied Physics Reviews",
issn = "1931-9401",
publisher = "American Institute of Physics Inc.",
number = "3",

}

RIS

TY - JOUR

T1 - Controlling excitons in the quantum tunnelling regime in a hybrid plasmonic/2D semiconductor interface

AU - Ferrera, M.

AU - Rahaman, Mahfujur

AU - Sanders, B. C.

AU - Pan, Yang

AU - Milekhin, Ilya

AU - Gemming, Sibylle

AU - Alabastri, A.

AU - Bisio, F.

AU - Canepa, M.

AU - Zahn, Dietrich R.T.

N1 - ACKNOWLEDGMENTS: M.R., I.M., Y.P., and D.R.T.Z. acknowledge Deutsche Forschungsgemeinschaft (DFG, German Research Foundation) for research funding via Nos. ZA 146/44-1, ZA 146/43-1, and ZA 146/47-1. M.F. acknowledges support from Deutscher Akademischer Austauschdienst (DAAD) for short-term grants, 2021 (No. 57552336).

PY - 2022/9/1

Y1 - 2022/9/1

N2 - The electromagnetic field confinement and amplification typical of nano-sized metallic objects supporting localized surface plasmon resonances, i.e., light-induced collective electronic oscillations, can significantly strengthen the interaction of light with atomically thin transition metal dichalcogenides. In view of the realization of plasmon-enhanced devices, it is crucial to investigate the effects induced by light confinement within metallic nanostructures on the excitonic properties of these materials at the nanoscale. Here, we exploit tip-enhanced photoluminescence spectroscopy to locally control the excitons of monolayer molybdenum disulfide (MoS2) coupled with gold nanotriangles in the quantum tunneling regime. The spatial resolution of 10 nm in the tip-enhanced photoluminescence measurements made it possible to image the light-emission related properties of monolayer MoS2 across one single metallic nanostructure and to investigate the effect of the plasmonic enhancement on its photoluminescence peak. Moreover, by taking advantage of the degree of freedom given by the tuning of the tip-sample distance; it was possible to probe the effect of the plasmonic pico-cavity size on the photoluminescence quenching rate of monolayer MoS2.

AB - The electromagnetic field confinement and amplification typical of nano-sized metallic objects supporting localized surface plasmon resonances, i.e., light-induced collective electronic oscillations, can significantly strengthen the interaction of light with atomically thin transition metal dichalcogenides. In view of the realization of plasmon-enhanced devices, it is crucial to investigate the effects induced by light confinement within metallic nanostructures on the excitonic properties of these materials at the nanoscale. Here, we exploit tip-enhanced photoluminescence spectroscopy to locally control the excitons of monolayer molybdenum disulfide (MoS2) coupled with gold nanotriangles in the quantum tunneling regime. The spatial resolution of 10 nm in the tip-enhanced photoluminescence measurements made it possible to image the light-emission related properties of monolayer MoS2 across one single metallic nanostructure and to investigate the effect of the plasmonic enhancement on its photoluminescence peak. Moreover, by taking advantage of the degree of freedom given by the tuning of the tip-sample distance; it was possible to probe the effect of the plasmonic pico-cavity size on the photoluminescence quenching rate of monolayer MoS2.

UR - https://www.mendeley.com/catalogue/5fd6d29d-91c2-32b3-ab7b-a5a18d5cfa96/

U2 - 10.1063/5.0078068

DO - 10.1063/5.0078068

M3 - Article

VL - 9

JO - Applied Physics Reviews

JF - Applied Physics Reviews

SN - 1931-9401

IS - 3

M1 - 031401

ER -

ID: 43517614