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Negative refractive index, perfect lenses and checkerboards: Trapping and imaging effects in folded optical spaces

机译:负折射率,完美的镜片和棋盘格:在折叠光学空间中的陷印和成像效果

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Newly discovered metamaterials have opened new vistas for better control of light via negative refraction, whereby light refracts in the "wrong" manner. These are dielectric and metallic composite materials structured at subwavelength lengthscales. Their building blocks consist of local resonators such as conducting thin bars and split rings driving the material parameters such as the dielectric permittivity and magnetic permeability to negative (complex) values. Combined together, these structural elements can bring about a (complex valued) negative effective refractive index for the Snell-Descartes law and result in negative refraction of radiation. Negative refractive index materials can support a host of surface plasmon states for both polarizations of light. This makes possible unique effects such as imaging with subwavelength image resolution through the Pendry-Veselago slab lens. Other geometries have also been investigated, such as cylindrical or spherical lenses that enable a magnification of images with subwavelength resolution. Superlenses of three-fold (equilateral triangle), four-fold (square) and six-fold (hexagonal) geometry allow for multiple images, respectively two, three, and five. Generalization to rectangular and triangular checkerboards consisting of alternating cells of positive and negative refractive index represents a very singular situation in which the density of modes diverges at the corners, with an infinity of images. Sine-cosecant anisotropic heterogeneous square and triangular checkerboards can be respectively mapped onto three-dimensional cubic and icosahedral corner lenses consisting of alternating positive and negative refractive regions. All such systems with corners between negative and positive refractive media display very singular behavior with the local density of states becoming infinitely large at the corner, in the limit of no dissipation. We investigate all of these, using the unifying viewpoint of transformation optics. To cite this article: S. Guenneau, S.A. Ramakrishna, C. R. Physique 10 (2009).
机译:新发现的超材料为通过负折射更好地控制光打开了新的视野,从而使光以“错误”的方式折射。这些是电介质和金属复合材料,结构为亚波长长度标度。它们的构建块由局部谐振器(例如导电细棒和开口环)组成,这些材料将诸如介电常数和磁导率的材料参数驱动为负(复)值。这些结构元素结合在一起,可以为Snell-Descartes定律带来(复数值)负有效折射率,并导致辐射的负折射。负折射率材料可以支持光的两种偏振的许多表面等离子体激元状态。这样可以实现独特的效果,例如通过Pendry-Veselago平板透镜以亚波长图像分辨率成像。还研究了其他几何形状,例如能够以亚波长分辨率放大图像的圆柱或球形透镜。三倍(等边三角形),四倍(正方形)和六倍(六边形)几​​何图形的超透镜可以生成多个图像,分别是两个,三个和五个。由正折射率和负折射率的交替单元组成的矩形和三角形棋盘格的概括表示一种非常奇异的情况,其中模式的密度在拐角处发散,并且图像无限。正弦余割各向异性的异方方形和三角形棋盘可以分别映射到由交替的正和负折射区域组成的三维立方和二十面角镜上。在负折射介质与正折射介质之间具有拐角的所有此类系统都显示出非常奇异的行为,在不耗散的范围内,拐角处的局部状态密度变得无限大。我们使用变换光学的统一观点来研究所有这些。引用本文:S. Guenneau,S.A. Ramakrishna,C. R. Physique 10(2009)。

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