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Open AccessJournal ArticleDOI

Plasmonic Surface Lattice Resonances: A Review of Properties and Applications

TLDR
The basic physical principles and properties of plasmonic surface lattice resonances are described: the width and quality of the resonances, singularities of the light phase, electric field enhancement, etc.
Abstract
When metal nanoparticles are arranged in an ordered array, they may scatter light to produce diffracted waves. If one of the diffracted waves then propagates in the plane of the array, it may couple the localized plasmon resonances associated with individual nanoparticles together, leading to an exciting phenomenon, the drastic narrowing of plasmon resonances, down to 1–2 nm in spectral width. This presents a dramatic improvement compared to a typical single particle resonance line width of >80 nm. The very high quality factors of these diffractively coupled plasmon resonances, often referred to as plasmonic surface lattice resonances, and related effects have made this topic a very active and exciting field for fundamental research, and increasingly, these resonances have been investigated for their potential in the development of practical devices for communications, optoelectronics, photovoltaics, data storage, biosensing, and other applications. In the present review article, we describe the basic phy...

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Citations
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Principles Of Optics Electromagnetic Theory Of Propagation Interference And Diffraction Of Light

Marina Schmid
TL;DR: In this paper, the authors present the principles of optics electromagnetic theory of propagation interference and diffraction of light, which can be used to find a good book with a cup of coffee in the afternoon, instead of facing with some infectious bugs inside their computer.
Journal ArticleDOI

A Review of 2D and 3D Plasmonic Nanostructure Array Patterns: Fabrication, Light Management and Sensing Applications

TL;DR: In this article, a review article discusses progress in surface plasmon resonance (SPR) of two-dimensional and three-dimensional (3D) chip-based nanostructure array patterns.
Journal ArticleDOI

Design of a dual-band terahertz metamaterial absorber using two identical square patches for sensing application

TL;DR: In this article, a dual-band terahertz metamaterial absorber composed of two identical square metallic patches and an insulating medium layer on top of a continuous metallic ground is demonstrated.
Journal ArticleDOI

Advances and applications of nanophotonic biosensors

TL;DR: In this article , the authors provide an overview of the recent developments of label-free nanophotonic biosensors using evanescent-field-based sensing with plasmon resonances in metals and Mie resonance in dielectrics and highlight the prospects of achieving an improved sensor performance and added functionalities by leveraging nanostructures and on-chip and optoelectronic integration, as well as microfluidics, biochemistry and data science toolkits.
Journal ArticleDOI

IR-Driven strong plasmonic-coupling on Ag nanorices/W18O49 nanowires heterostructures for photo/thermal synergistic enhancement of H2 evolution from ammonia borane

TL;DR: In this paper, an IR-driven strong plasmonic coupling in an unusual metal/non-metal heterostructure system is reported, which is fabricated through random assemblage of Ag nanorices onto W18O49 nanowires (NWs) film with F-doped SnO2 glass as substrate.
References
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Negative Refraction Makes a Perfect Lens

TL;DR: The authors' simulations show that a version of the lens operating at the frequency of visible light can be realized in the form of a thin slab of silver, which resolves objects only a few nanometers across.
Journal ArticleDOI

Surface plasmon subwavelength optics

TL;DR: By altering the structure of a metal's surface, the properties of surface plasmons—in particular their interaction with light—can be tailored, which could lead to miniaturized photonic circuits with length scales that are much smaller than those currently achieved.
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