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Far-Field Imaging Beyond the Diffraction Limit Using Waves Interference

机译:超越衍射极限的远场成像使用波浪干扰

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摘要

Due to the wave nature of light, resolution of optical imaging systems is limited to approximately half of the wavelength. The reason behind this limitation, known as diffraction limit, is the loss of information contained in evanescent waves at the far-field region. Here, we propose a new method to retrieve the information contained in evanescent waves in far field region resulting in a novel sub-wavelength imaging technique which can go beyond the diffraction limit. We theoretically prove that using interference of waves, between the target field and reference and reconstruction waves, one can apply a shift to the angular spectrum of the target field and convert a range of evanescent waves into propagating modes. Moreover, we demonstrate how these converted waves can be distinguished in far-field from other existing modes. Unlike previously developed sub-wavelength imaging techniques, the proposed method does not require either fluorescent materials or complex nano-structures to realize evanescent-to-propagating wave conversion. The performance of the method is numerically investigated illustrating a resolution of one-seventh of the working wavelength, which is much beyond the diffraction limit. The proposed technique can significantly simplify sub-wavelength imaging paving the road to develop practical low cost super-resolution imaging systems.
机译:由于光的波形,光学成像系统的分辨率限于波长的大约一半。这种限制背后的原因被称为衍射极限,是在远场区域的渐逝波中所含的信息的丢失。这里,我们提出了一种新方法来检索远场区域中的渐逝波中包含的信息,从而产生了一种可以超出衍射极限的新型子波长成像技术。理论上,从理论上证明,在目标场和参考和重建波之间使用波的干扰,可以将移位施加到目标场的角频谱,并将一系列渐变波转换成传播模式。此外,我们展示了这些转换的波可以从其他现有模式的远场中区分开。与先前开发的子波长成像技术不同,所提出的方法不需要荧光材料或复合纳米结构来实现渐逝与传播波转换。在数值上研究了该方法的性能,说明了工作波长的第七次的分辨率,这远远超出衍射极限。所提出的技术可以显着简化铺路道路的子波长成像,以开发实用的低成本超分辨率成像系统。

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