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纳米尺度布利冈多层结构:等离子体一维纳米物体螺旋组装体的巨圆二色性

Nanoscale Bouligand Multilayers: Giant Circular Dichroism of Helical Assemblies of Plasmonic 1D Nano-Objects.

作者信息

Hu Hebing, Sekar Sribharani, Wu Wenbing, Battie Yann, Lemaire Vincent, Arteaga Oriol, Poulikakos Lisa V, Norris David J, Giessen Harald, Decher Gero, Pauly Matthias

机构信息

Université de Strasbourg, CNRS, Institut Charles Sadron UPR22, 67000 Strasbourg, France.

Université de Lorraine, LCP-A2MC, 57000 Metz, France.

出版信息

ACS Nano. 2021 Aug 24;15(8):13653-13661. doi: 10.1021/acsnano.1c04804. Epub 2021 Aug 10.

DOI:10.1021/acsnano.1c04804
PMID:34375085
Abstract

Chirality is found at all length scales in nature, and chiral metasurfaces have recently attracted attention due to their exceptional optical properties and their potential applications. Most of these metasurfaces are fabricated by top-down methods or bottom-up approaches that cannot be tuned in terms of structure and composition. By combining grazing incidence spraying of plasmonic nanowires and nanorods and Layer-by-Layer assembly, we show that nonchiral 1D nano-objects can be assembled into scalable chiral Bouligand nanostructures whose mesoscale anisotropy is controlled with simple macroscopic tools. Such multilayer helical assemblies of linearly oriented nanowires and nanorods display very high circular dichroism up to 13 000 mdeg and giant dissymmetry factors up to ≈ 0.30 over the entire visible and near-infrared range. The chiroptical properties of the chiral multilayer stack are successfully modeled using a transfer matrix formalism based on the experimentally determined properties of each individual layer. The proposed approach can be extended to much more elaborate architectures and gives access to template-free and enantiomerically pure nanocomposites whose structure can be finely tuned through simple design principles.

摘要

手性在自然界的所有长度尺度上都存在,手性超表面因其特殊的光学性质及其潜在应用最近受到了关注。这些超表面大多是通过自上而下的方法或自下而上的途径制造的,其结构和组成无法调节。通过结合等离子体纳米线和纳米棒的掠入射喷涂以及逐层组装,我们表明非手性的一维纳米物体可以组装成可扩展的手性布利冈德纳米结构,其介观各向异性可以用简单的宏观工具来控制。这种由线性排列的纳米线和纳米棒组成的多层螺旋组件在整个可见光和近红外范围内显示出高达13000毫度的非常高的圆二色性和高达约0.30的巨大不对称因子。基于各单层的实验测定性质,使用转移矩阵形式成功地对手性多层堆叠的手性光学性质进行了建模。所提出的方法可以扩展到更复杂的结构,并能够制备无模板且对映体纯的纳米复合材料,其结构可以通过简单的设计原则进行精细调节。

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