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用于加密手性全息图的螺旋光子超材料。

Helical Photonic Metamaterials for Encrypted Chiral Holograms.

作者信息

Choi Wonjin, Moestopo Widianto P, Gu Songyun, Lee Taeil, Yoo Jae-Hyuck, Xia Xiaoxing, Armstrong Michael R

机构信息

Physical and Life Sciences, Materials Science Division, Lawrence Livermore National Laboratory, Livermore, CA, 94550, USA.

Center for Engineered Materials and Manufacturing, Lawrence Livermore National Laboratory, Livermore, CA, 94550, USA.

出版信息

Adv Sci (Weinh). 2025 Jul 22:e07931. doi: 10.1002/advs.202507931.

Abstract

Helical structures are among the most quintessential three-dimensional (3D) forms that exhibit mirror asymmetry, a hallmark of chirality. Various structural parameters of helices directly linked to chiroptical properties highlight their importance as essential optical metamaterials for polarization-resolved sensors, imaging, and spectroscopies. However, such function-defining properties remain incompletely understood due to fabrication challenges and the lack of a relationship between structure and optical properties. Here, helical structures are analyzed parametrically, and correlations are established that are applicable to the design of chiral helical optical metamaterials. By systematically varying independent parameters-such as from single-turn to five-turn helices and from small major radii to larger ones optimized to fit the unit cell-the underlying relationships with ellipticty are revealed. In addition to theoretical modeling, the findings are experimentally validated using 3D printing and terahertz spectroscopy. The results demonstrate that optimized helical structures are mechanically tunable and exhibit unprecedented optical properties, including broadband and high-magnitude ellipticity spectra. Being embedded in soft elastomers, helical arrays can serve as soft, stretchable optical-mechanical sensors and holograms containing encoded information, such as barcodes and quick response (QR) codes. Chiral QR codes are realized using pixelated single helices with different handedness, demonstrating their potential as advanced encryption/decryption systems for security applications and chiral metaholograms.

摘要

螺旋结构是最典型的三维(3D)形式之一,呈现出镜像不对称性,这是手性的一个标志。与旋光性质直接相关的螺旋结构的各种结构参数突出了它们作为偏振分辨传感器、成像和光谱学的基本光学超材料的重要性。然而,由于制造挑战以及结构与光学性质之间缺乏关联,这些定义功能的性质仍未得到充分理解。在此,对螺旋结构进行了参数分析,并建立了适用于手性螺旋光学超材料设计的相关性。通过系统地改变独立参数,如从单圈螺旋到五圈螺旋,以及从小的主半径到为适应单位晶胞而优化的较大主半径,揭示了与椭圆率的潜在关系。除了理论建模外,还使用3D打印和太赫兹光谱对研究结果进行了实验验证。结果表明,优化后的螺旋结构具有机械可调性,并展现出前所未有的光学性质,包括宽带和高幅度的椭圆率光谱。嵌入软弹性体中的螺旋阵列可作为柔软、可拉伸的光机械传感器以及包含编码信息(如条形码和二维码)的全息图。使用具有不同手性的像素化单螺旋实现了手性二维码,展示了它们作为安全应用的先进加密/解密系统和手性超全息图的潜力。

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