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What is the Smallest Volume Into Which Light Can Be Focused, Efficiently?

机译:灯可以聚焦的最小体积是多少?

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Electromagnetic waves, running in close proximity to a metal surface, can have surprisingly short wave-lengths, as short as 驴=1nm, at optical frequencies. Thus the phrase Optical frequencies but with X-ray wavelengths, is appropriate. In effect these plasmon waves can experience a high effective refractive index, n禄100, dependent on the exact guiding structure. We find moreover, that at these short wavelengths, the skin depth or exponential decay depth, inside the metal can be <1nm, much shorter than the conventional collisionless skin depth, c/驴p 25nm in Silver. We propose an innovative dimple geometry as a focusing structure that makes it possible to focus visible frequencies down to 5nm dimensions, with an efficiency of 50%. This focusing structure is much more efficient, and leads to a much smaller spot size, than can be achieved with conventional pinhole structures. We introduce a new Figure-of-Merit for focusing that properly accounts for plasmonic energy dissipation. We find that the limit of focusing is reached when the electromagnetic plasmonic group velocity vg becomes as slow as the electron Fermi velocity, VF.
机译:在光学频率下,电磁波靠近金属表面靠近金属表面,可以具有令人惊讶的短波长,如驴= 1nm。因此,短语光学频率但具有X射线波长,是合适的。实际上,这些等离子体波可以通过精确的引导结构体验高有效的折射率N禄100。我们发现此外,在这些短波长,皮肤深度或指数衰减深度,在金属内部可以是<1nm,比传统的碰撞性肤色深度短,在银中的C /驴P 25nm。我们提出了一种创新的凹坑几何形状作为聚焦结构,使得可以将可见频率聚焦到5nm尺寸,其效率为50%。这种聚焦结构更有效,并且导致较小的光斑尺寸,而不是通过传统的针孔结构实现。我们介绍了一个新的绩效专注,以适当地考虑等离子体能量耗散。我们发现当电磁等离子体群速度Vg作为电子FERMI速度,VF变慢时,达到聚焦的极限。

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