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Chiral Grayscale Imaging with Plasmonic Metasurfaces of Stepped Nanoapertures

机译:具有阶梯式纳米术的等离子体元件的手表灰度成像

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Optical chiral imaging, as an important tool in chemical and biological analysis, has recently undergone a revolution with the development of chiral metamaterials and metasurfaces. However, the existing chiral imaging approaches based on metamaterials or metasurfaces can only display binary images with 1 bit pixel depth having either black or white pixels. Here, the unique chiral grayscale imaging based on plasmonic metasurfaces of stepped V-shaped nanoapertures is reported with both high circular dichroism and large polarization linearity in transmission. By interlacing two subarrays of chiral nanoaperture enantiomers into one metasurface, two specific linear polarization profiles are independently generated in transmission under different incident handedness, which can then be converted into two distinct intensity profiles for demonstrating spin-controlled grayscale images with 8 bit pixel depth. The proposed chiral grayscale imaging approach with subwavelength spatial resolution and high data density provides a versatile platform for many future applications in image encryption and decryption, dynamic display, advanced chiroptical sensing, and optical information processing.
机译:作为化学和生物分析中的重要工具,光学手性成像最近经历了手性超材料和元卷积的革命。然而,基于超材料或元件的现有手性成像方法只能显示具有具有黑色或白色像素的1位像素深度的二进制图像。这里,基于阶梯式V形纳米孔径等离子体元件的独特手性灰度成像,具有高圆形二中间的二色性和传输中的大极化线性。通过将两种手性纳米腔对映体的子阵列与一个元表面相互间隔,在不同的事故用法下的传输中独立地产生了两个特定的线性偏振曲线,然后可以转换成两个不同的强度轮廓,用于说明具有8位像素深度的自旋控制灰度图像。所提出的手性灰度成像方法,具有子波长空间分辨率和高数据密度为许多未来的图像加密和解密,动态显示,高级手术感测和光学信息处理提供了多功能平台。

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