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利用可重构基于蛋白质的等离子体光子晶体混合纳米结构产生复杂可调谐多光谱特征。

Generation of Complex Tunable Multispectral Signatures with Reconfigurable Protein-Based, Plasmonic-Photonic Crystal Hybrid Nanostructures.

机构信息

Silklab, Department of Biomedical Engineering, Tufts University, 200 Boston Avenue, Medford, MA, 02155, USA.

Department of Physics, Tufts University, Medford, MA, 02155, USA.

出版信息

Small. 2022 Jun;18(22):e2201036. doi: 10.1002/smll.202201036. Epub 2022 May 8.

Abstract

Structurally colored materials, which rely on the interaction between visible light and nanostructures, produce brilliant color displays through fine control of light interference, diffraction, scattering, or absorption. Rationally combining different color-selective functions into a single form offers a powerful strategy to create programmable optical functions which are otherwise difficult, if not impossible to obtain. By leveraging structural protein templates, specifically silk fibroin, nanostructured materials that combine plasmonic and photonic crystal paradigms are shown here. This confluence of function enables directional, tunable, and multiple co-located optical responses derived from the interplay between surface plasmon resonance and photonic bandgap effects. Several demonstrations are shown with programmable coloration at varying viewing sides, angle, and by solvent infiltration, opening avenues for smart displays and multi-mode information encoding applications.

摘要

结构色材料依赖于可见光与纳米结构之间的相互作用,通过精细控制光的干涉、衍射、散射或吸收来产生绚丽的色彩显示。将不同的颜色选择功能合理地结合到单一形式中,提供了一种强大的策略来创造可编程的光学功能,否则这些功能很难(如果不是不可能的话)获得。通过利用结构蛋白模板,特别是丝素蛋白,本文展示了将等离子体和光子晶体范例结合在一起的纳米结构材料。这种功能的融合使来自表面等离子体共振和光子能带隙效应相互作用的定向、可调谐和多个共定位的光学响应成为可能。通过溶剂渗透,在不同的观察侧面、角度上展示了几种可编程的着色,为智能显示和多模式信息编码应用开辟了途径。

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