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  4. Nonlinear absorption and scattering of a single plasmonic nanostructure characterized by x-scan technique
 
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Nonlinear absorption and scattering of a single plasmonic nanostructure characterized by x-scan technique

Journal
Beilstein Journal of Nanotechnology
Journal Volume
10
Pages
2182-2191
Date Issued
2019
Author(s)
Jagadale, T.C.
Murali, D.S.
SHI-WEI CHU  
DOI
10.3762/bjnano.10.211
URI
https://www.scopus.com/inward/record.url?eid=2-s2.0-85082674714&partnerID=40&md5=ddbe390b7d40e48909c58be6c35c3ad7
https://scholars.lib.ntu.edu.tw/handle/123456789/574271
Abstract
Nonlinear nanoplasmonics is a largely unexplored research area that paves the way for many exciting applications, such as nanolasers, nanoantennas, and nanomodulators. In the field of nonlinear nanoplasmonics, it is highly desirable to characterize the nonlinearity of the optical absorption and scattering of single nanostructures. Currently, the common method to quantify optical nonlinearity is the z-scan technique, which yields real and imaginary parts of the permittivity by moving a thin sample with a laser beam. However, z-scan typically works with thin films, and thus acquires nonlinear responses from ensembles of nanostructures, not from single ones. In this work, we present an x-scan technique that is based on a confocal laser scanning microscope equipped with forward and backward detectors. The two-channel detection offers the simultaneous quantification for the nonlinear behavior of scattering, absorption and total attenuation by a single nanostructure. At low excitation intensities, both scattering and absorption responses are linear, thus confirming the linearity of the detection system. At high excitation intensities, we found that the nonlinear response can be derived directly from the point spread function of the x-scan images. Exceptionally large nonlinearities of both scattering and absorption are unraveled simultaneously for the first time. The present study not only provides a novel method for characterizing nonlinearity of a single nanostructure, but also reports surprisingly large plasmonic nonlinearities. © 2019 Jagadale et al.
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Type
journal article

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