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通过3D打印实现具有空间图案化取向有序性的等离子体超材料凝胶

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

作者信息

Hess Andrew J, Funk Andrew J, Liu Qingkun, De La Cruz Joshua A, Sheetah Ghadah H, Fleury Blaise, Smalyukh Ivan I

机构信息

Department of Physics, 390 UCB, University of Colorado Boulder, Boulder, Colorado 80309, United States.

Materials Science and Engineering, 027 UCB, Sustainability, Energy & Environment Community, University of Colorado Boulder, Boulder, Colorado 80303, United States.

出版信息

ACS Omega. 2019 Nov 15;4(24):20558-20563. doi: 10.1021/acsomega.9b02418. eCollection 2019 Dec 10.

Abstract

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.

摘要

通过对主体材料进行图案化处理并使其纳米颗粒内含物有序排列,可以在介观尺度上对光学性质进行编程。虽然液晶常用于定义分散在其中的纳米颗粒的排列,但这种方法通常仅限于局限于经典几何形状的液晶。在这项工作中,液晶胶体主体赋予各向异性纳米颗粒内含物的取向有序性与一种增材制造方法相结合,该方法能够实现共排列的金纳米棒和纤维素纳米晶体的工程化宏观三维(3D)图案。这些凝胶表现出偏振依赖的等离子体特性,这些特性源于由取向有序的纤维素纳米晶体定义的主体介质各向异性光学性质、液晶的金纳米棒内含物以及通过3D打印获得的空间图案的复杂性之间的独特相互作用。通过控制凝胶的有序性来调节由这些效应的相互作用所定义的凝胶光学性质,而凝胶的有序性则通过调整凝胶的纤维素纳米晶体浓度来调节。这些复合凝胶对偏振辐射的灵活光学响应可能实现诸如偏振敏感光学元件等独特的技术应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bd2f/6906772/78fb15dde635/ao9b02418_0005.jpg

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