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Plasmonic Metamaterial Gels with Spatially Patterned Orientational Order via 3D Printing

DOI:10.1021/acsomega.9b02418 期刊:ACS Omega 出版年份:2019 更新时间:2025-09-12 10:27:22
摘要: Optical properties can be programmed on mesoscopic scales by patterning host materials while ordering their nanoparticle inclusions. While liquid crystals are often used to define the ordering of nanoparticles dispersed within them, this approach is typically limited to liquid crystals confined in classic geometries. In this work, the orientational order that liquid crystalline colloidal hosts impose on anisotropic nanoparticle inclusions is combined with an additive manufacturing method that enables engineered, macroscopic three-dimensional (3D) patterns of co-aligned gold nanorods and cellulose nanocrystals. These gels exhibit polarization-dependent plasmonic properties that emerge from the unique interaction between the host medium’s anisotropic optical properties defined by orientationally ordered cellulose nanocrystals, from the liquid crystal’s gold nanorod inclusions, and from the complexity of spatial patterns accessed with 3D printing. The gels’ optical properties that are defined by the interplay of these effects are tuned by controlling the gels’ order, which is tuned by adjusting the gels’ cellulose nanocrystal concentrations. Lithe optical responsiveness of these composite gels to polarized radiation may enable unique technological applications like polarization-sensitive optical elements.
作者: Ivan I. Smalyukh,Andrew J. Hess,Andrew J. Funk,Blaise Fleury,Joshua A. De La Cruz,Ghadah H. Sheetah,Qingkun Liu
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Investigating the programming of optical properties on mesoscopic scales by patterning host materials and ordering their nanoparticle inclusions, specifically focusing on the combination of liquid crystalline colloidal hosts' orientational order with additive manufacturing for creating 3D patterns of co-aligned gold nanorods and cellulose nanocrystals.

The study successfully developed plasmonic metamaterial gels with programmable optical properties through the combination of liquid crystalline colloidal hosts' orientational order and additive manufacturing. These gels exhibit polarization-dependent plasmonic properties, offering potential applications in polarization-sensitive optical elements. The conversion of hydrogels to aerogels further shifts plasmonic resonances, suggesting additional applications in ultralight materials.

The approach is limited by the need for precise control over the gels’ order and the CNC concentrations to achieve desired optical properties. The manufacturing procedures may also require optimization for different applications.

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