Title :
Strong near field coupling and enhanced energy extraction in metal nanostructures
Author :
McArthur, D. ; Hourahine, B. ; Papoff, F.
Author_Institution :
Dept. of Phys., Univ. of Strathclyde, Glasgow, UK
Abstract :
Summary form only given. Using the principal modes theory [1], we show that the presence of a gold nanodisc (400nm diameter, 35nm thickness) at sub-wavelength distances from a dipole excitation source can result in a larger amount of energy extracted from the electric current in the source and also in greater transmission of light compared to the dipole alone. The enhanced energy extraction from the source is due to the coupling between the excitation source and the backscattered field, as described by Poynting´s theorem [2]. Within the regime of strong interaction we investigate how the disc transports energy to the far field at various system feature wavelengths; the intrinsic resonance of the system (~590nm), the anomalous transmission peak (~610nm) and a reference from the upper steady state of the regime (780nm). We produce images of the disc by scanning the source across the transverse plane, analogous to SNOM imaging which uses simple dipole configurations to model aperture fields [2,3].We find that while the near field of the disc contains light with a wide range of orbital angular momentum modes, the majority of the energy is transported to the far field by just the lower orders. These effects could have useful applications in near field optics and understanding imaging methods such as SNOM.
Keywords :
electro-optical effects; gold; light transmission; nanophotonics; nanostructured materials; near-field scanning optical microscopy; Au; Poynting´s theorem; SNOM imaging; anomalous transmission peak; backscattered field; dipole excitation source; disc transport energy; electric current; enhanced energy extraction; far field; gold nanodisc; imaging methods; intrinsic resonance; light transmission; metal nanostructures; model aperture fields; near field optics; orbital angular momentum modes; principal mode theory; simple dipole configurations; size 35 nm; size 400 nm; source scanning; strong interaction; strong near field coupling; sub-wavelength distances; system feature wavelengths; transverse plane; upper steady state; wavelength 780 nm; Couplings; Educational institutions; Imaging; Metals; Nanostructures; Scattering;
Conference_Titel :
Lasers and Electro-Optics Europe (CLEO EUROPE/IQEC), 2013 Conference on and International Quantum Electronics Conference
Conference_Location :
Munich
Print_ISBN :
978-1-4799-0593-5
DOI :
10.1109/CLEOE-IQEC.2013.6801479