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  4. Short-range plasmonic nanofocusing within submicron regimes facilitates in situ probing and promoting of interfacial reactions
 
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Short-range plasmonic nanofocusing within submicron regimes facilitates in situ probing and promoting of interfacial reactions

Journal
Nanoscale
Journal Volume
8
Journal Issue
6
Pages
3647-3659
Date Issued
2016
Author(s)
Yu, C.-C.
Lin, K.-T.
Su, P.-Y.
Wang, E.-Y.
Yen, Y.-T.
Chen, H.-L.
HSUEN-LI CHEN  
DOI
10.1039/c5nr06555k
URI
https://scholars.lib.ntu.edu.tw/handle/123456789/491284
URL
https://www.scopus.com/inward/record.uri?eid=2-s2.0-84957708925&doi=10.1039%2fc5nr06555k&partnerID=40&md5=7034ca555672fb92c4ccb7e8479054c6
Abstract
In this study, a simple configuration, based on high-index dielectric nanoparticles (NPs) and plasmonic nanostructures, is employed for the nanofocusing of submicron-short-range surface plasmon polaritons (SPPs). The excited SPPs are locally bound and focused at the interface between the dielectric NPs and the underlying metallic nanostructures, thereby greatly enhancing the local electromagnetic field. Taking advantage of the surface properties of the dielectric NPs, this system performs various functions. For example, the nanofocusing of submicron-short-range SPPs is used to enhance the Raman signals of gas molecules adsorbed on the dielectric NPs. In addition, the presence of the local strong electromagnetic field accelerates the rates of interfacial reactions on the surfaces of the dielectric NPs. Therefore, the proposed nanofocusing configuration can both promote and probe interfacial reactions simultaneously. Herein, the promotion and probing of the desorption of EtOH vapor are described, as well as the photodegradation of methylene blue. Moreover, the nanofocusing of SPPs is demonstrated on an aluminum surface in both the visible and UV regimes, a process that has not been achieved using conventional tapered waveguide nanofocusing structures. Therefore, the nanofocusing of submicron-short-range SPPs by dielectric NPs on plasmonic nanostructures is not limited to low-loss noble metals. Accordingly, this system has potential for use in light management and on-chip green devices and sensors.
SDGs

[SDGs]SDG3

Type
journal article

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