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Compact planar far-field superlens based on anisotropic left-handed metamaterials

机译:基于各向异性左手超材料的紧凑型平面远场超透镜

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摘要

Pendry's perfect lens has spurred intense interest for its practical realization at visible frequencies. However, fabrication of low-loss isotropic left-handed metamaterials is a current challenge. In this work, we theoretically show that under specific conditions anisotropic metamaterial slabs can emulate Pendry's perfect-lens phenomenon on a plane. Geometric optics leads to a new lens formula for this special anisotropic metamaterial superlens, which allows significant shrinkage of the metamaterial slab thickness for a certain range of far-field operation. Conversely, such anisotropic metamaterial superlens with the same thickness as its isotropic analog can operate for much larger distances between object and lens. We present numerical simulations which confirm our theoretical calculations. In particular, we find subdiffraction focusing that rivals the perfect isotropic negative-index metamaterial lens performance and obeys the new lens formula as predicted. In addition, we demonstrate that it is possible to attain far-field superfocusing with a metamaterial slab as thin as half the free-space wavelength. We believe this work will inspire new anisotropic metamaterial designs and opens a promising route for the realization of compact far-field superlenses in the visible regime. © 2009 The American Physical Society.
机译:Pendry的完美镜头因其在可见光频率下的实际实现而引起了极大的兴趣。然而,制造低损耗各向同性的左手超材料是当前的挑战。在这项工作中,我们从理论上证明,在特定条件下,各向异性超材料平板可以在平面上模拟彭德里的完美透镜现象。几何光学为这种特殊的各向异性超材料超透镜带来了新的透镜公式,对于一定范围的远场操作,超材料超厚板厚度可以显着缩小。相反,与各向同性类似物厚度相同的这种各向异性超材料超透镜可以在物镜与透镜之间的更大距离上工作。我们提出了数值模拟,证实了我们的理论计算。特别是,我们发现亚衍射聚焦可与理想的各向同性负折射率超材料透镜性能相媲美,并遵循预期的新透镜公式。此外,我们证明了使用超薄材料(如自由空间波长的一半)来实现远场超聚焦是可能的。我们相信这项工作将激发新的各向异性超材料的设计,并为在可见光区实现紧凑的远场超透镜开辟一条有希望的途径。 ©2009美国物理学会。

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