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首页> 外文期刊>Science Advances >Three-dimensional all-dielectric metamaterial solid immersion lens for subwavelength imaging at visible frequencies
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Three-dimensional all-dielectric metamaterial solid immersion lens for subwavelength imaging at visible frequencies

机译:用于可见光亚波长成像的三维全电介质超材料固体浸没透镜

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Although all-dielectric metamaterials offer a low-loss alternative to current metal-based metamaterials to manipulate light at the nanoscale and may have important applications, very few have been reported to date owing to the current nanofabrication technologies. We develop a new “nano–solid-fluid assembly” method using 15-nm TiO2 nanoparticles as building blocks to fabricate the first three-dimensional (3D) all-dielectric metamaterial at visible frequencies. Because of its optical transparency, high refractive index, and deep-subwavelength structures, this 3D all-dielectric metamaterial-based solid immersion lens (mSIL) can produce a sharp image with a super-resolution of at least 45 nm under a white-light optical microscope, significantly exceeding the classical diffraction limit and previous near-field imaging techniques. Theoretical analysis reveals that electric field enhancement can be formed between contacting TiO2 nanoparticles, which causes effective confinement and propagation of visible light at the deep-subwavelength scale. This endows the mSIL with unusual abilities to illuminate object surfaces with large-area nanoscale near-field evanescent spots and to collect and convert the evanescent information into propagating waves. Our all-dielectric metamaterial design strategy demonstrates the potential to develop low-loss nanophotonic devices at visible frequencies.
机译:尽管全电介质超材料提供了一种替代当前金属基超材料的低损耗替代品,可在纳米级上控制光并且可能具有重要的应用,但由于当前的纳米制造技术,迄今为止报道的很少。我们开发了一种新的“纳米固液组装”方法,该方法使用15 nm TiO 2 纳米粒子作为构建基块,以在可见频率下制造第一个三维(3D)全介电超材料。由于其光学透明性,高折射率和深亚波长结构,这种基于3D全介电超材料的固体浸没透镜(mSIL)可以在白光下产生至少45 nm的超高分辨率的清晰图像。光学显微镜,大大超过了经典的衍射极限和以前的近场成像技术。理论分析表明,在接触的TiO 2 纳米粒子之间可以形成电场增强,从而在深亚波长范围内有效限制可见光的传播。这使mSIL具有非常规的能力,可以用大面积的纳米级近场e逝斑照亮物体表面,并且可以将the逝信息收集并转换为传播波。我们的全介电超材料设计策略证明了在可见光频率下开发低损耗纳米光子器件的潜力。

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