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Polarization-Dependent Plasmon-Induced Doping and Strain Effects in MoS2 Monolayers on Gold Nanostructures

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Lemes, Matheus Fernandes Sousa ; Pimenta, Ana Clara Sampaio ; Calderon, Gaston Lozano ; Pereira-da-Silva, Marcelo A. ; Ames, Alessandra ; Teodoro, Marcio Daldin ; Marega, Guilherme Migliato ; Chiesa, Riccardo ; Wang, Zhenyu ; Kis, Andras ; Marega Junior, Euclydes
Total Authors: 11
Document type: Journal article
Source: ACS NANO; v. 19, n. 2, p. 11-pg., 2025-01-10.
Abstract

Monolayers of transition-metal dichalcogenides, such as MoS2, have attracted significant attention for their exceptional electronic and optical properties, positioning them as ideal candidates for advanced optoelectronic applications. Despite their strong excitonic effects, the atomic-scale thickness of these materials limits their light absorption efficiency, necessitating innovative strategies to enhance light-matter interactions. Plasmonic nanostructures offer a promising solution to overcome those challenges by amplifying the electromagnetic field and also introducing other mechanisms, such as hot electron injection. In this study, we investigate the vibrational and optical properties of MoS2 monolayer deposited on gold substrates and gratings, emphasizing the role of strain and plasmonic effects using conventional spectroscopic techniques. Our results reveal significant biaxial strain in the supported regions and a uniaxial strain gradient in the suspended ones, showing a strain-induced exciton and carrier funneling effect toward the center of the nanogaps. Moreover, we observed an additional polarization-dependent doping mechanism in the suspended regions. This effect was attributed to localized surface plasmons generated within the slits, as confirmed by numerical simulations, which may decay nonradiatively into hot electrons and be injected into the monolayer. Photoluminescence measurements further demonstrated a polarization-dependent trion-to-A exciton intensity ratio, supporting the hypothesis of additional plasmon-induced doping. These findings provide a comprehensive understanding of the strain-mediated funneling effects and plasmonic interactions in hybrid MoS2/Au nanostructures, offering valuable insights for developing high-efficiency photonic devices and quantum technologies, including polarization-sensitive detectors and excitonic circuits. (AU)

FAPESP's process: 23/11839-3 - Extreme behavior of light-matter interaction in plasmonic nanostructures coupled with 2D materials
Grantee:Ana Clara Sampaio Pimenta
Support Opportunities: Scholarships in Brazil - Post-Doctoral
FAPESP's process: 22/10340-2 - Scientific MUE: acquisition of a high temporal, spatial and spectral resolution fluorescence system operating over a wide temperature range
Grantee:Gilmar Eugenio Marques
Support Opportunities: Research Infrastructure Program - Scientific
FAPESP's process: 20/04835-3 - Controlling the polarization state of rare earth emissions in tellurite glasses from plasmonic nano antennas
Grantee:Gaston Lozano Calderón
Support Opportunities: Scholarships in Brazil - Doctorate
FAPESP's process: 09/54035-4 - Facility for advanced studies of biosystems and nanostructured materials
Grantee:Igor Polikarpov
Support Opportunities: Multi-user Equipment Program
FAPESP's process: 13/07276-1 - CEPOF - Optics and Photonic Research Center
Grantee:Vanderlei Salvador Bagnato
Support Opportunities: Research Grants - Research, Innovation and Dissemination Centers - RIDC
FAPESP's process: 22/10340-2 - Scientific MUE: acquisition of a high temporal, spatial and spectral resolution fluorescence system operating over a wide temperature range
Grantee:Gilmar Eugenio Marques
Support Opportunities: Research Infrastructure Program - Scientific
FAPESP's process: 21/03311-3 - Extreme behavior of light-matter interaction in plasmonic nanostructures coupled with 2D materials
Grantee:Euclydes Marega Junior
Support Opportunities: Regular Research Grants