Silent Enhancement of Sers Signa Without Increasing Hot Spot Intensities

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Date

2018

Journal Title

Journal ISSN

Volume Title

Publisher

Walter de Gruyter Gmbh

Open Access Color

GOLD

Green Open Access

Yes

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Publicly Funded

No
Impulse
Top 10%
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Average
Popularity
Top 10%

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Abstract

Plasmonic nanostructures enhance nonlinear response, such as surface enhanced Raman scattering (SERS), by localizing the incident field into hot spots. The localized hot spot field can be enhanced even further when linear Fano resonances take place in a double resonance scheme. However, hot spot enhancement is limited with the modification of the vibrational modes, the breakdown of the molecule, and the tunneling regime. Here, we present a method which can circumvent these limitations. Our analytical model and solutions of 3D Maxwell equations show that: enhancement due to the localized field can be multiplied by a factor of 10(2)-10(3). Moreover, this can be performed without increasing the hot spot intensity which also avoids the modification of the Raman modes. Unlike linear Fano resonances, here, we create a path interference in the nonlinear response. We demonstrate on a single equation that enhancement takes place due to cancellation of the contributing terms in the denominator of the SERS response. Our method can be implemented on an atomic force microscope tip, decorated (or "contaminated") with appropriate quantum emitters.

Description

Bek, Alpan/0000-0002-0190-7945; Yildiz, Bilge Can/0000-0002-3256-8173; Postaci, Selen/0000-0003-3053-0857; Tasgin, Mehmet Emre/0000-0001-8483-6881

Keywords

Fano resonance, surface enhanced Raman scattering, hot spot, nonlinear plasmonics, plasmon modes, nonlinear plasmonics, hot spot, Physics, QC1-999, surface enhanced Raman scattering, Fano resonance, plasmon modes

Fields of Science

02 engineering and technology, 0210 nano-technology

Citation

WoS Q

Q1

Scopus Q

Q1
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OpenCitations Citation Count
22

Source

Nanophotonics

Volume

7

Issue

10

Start Page

1687

End Page

1695

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Citations

CrossRef : 22

Scopus : 23

Captures

Mendeley Readers : 18

Web of Science™ Citations

21

checked on Apr 16, 2026

Page Views

5

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1.5694

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