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通过在双锥体薄膜中结合形状各向异性和软相互作用实现的等离子体多晶型物

Plasmonic Polymorphs by Combining Shape Anisotropy and Soft Interactions in Bipyramid Thin Films.

作者信息

Marcone Jules, Juergensen Sabrina, Barrios-Capuchino Juan, Li Xiaoyian, Goldmann Claire, Köppen Andrea, Pfeiffer Winnie, Lehmkühler Felix, Parak Wolfgang J, Kociak Mathieu, Impéror-Clerc Marianne, Reich Stephanie, Hamon Cyrille, Schulz Florian

机构信息

Laboratoire de Physique des Solides, Université Paris-Saclay, CNRS, Orsay, 91405, France.

Department of Physics, Freie Universität Berlin, 14195, Berlin, Germany.

出版信息

Small. 2025 Aug;21(31):e2500389. doi: 10.1002/smll.202500389. Epub 2025 May 30.

Abstract

Thin-film plasmonic supercrystals of pentagonal gold nanobipyramids (AuBP) exhibit a diverse range of packing structures that influence the near-field distribution of the enhanced electric field and the far-field response. By varying the molecular weight of the coating ligands, the softness of the anisotropic building blocks is changed. A thorough structural characterization reveals that this affects the resulting superstructures from self-assembly more intricately than with isotropic building blocks. Softer coatings lead to smaller aligned domains in monolayers, while bilayers exhibit more crystalline domains with dominant interlayer twist angles near 0° and 90°. The far-field distribution and near-field response are measured using micro-absorbance and electron energy loss spectroscopy (EELS). Correlating these data with high-resolution transmission electron microscopy (HR-TEM) structural analysis enabled the identification of the longitudinal and transverse individual and collective plasmonic modes. Notably, for large crystalline bilayer domains, a strong polarization-dependent optical response is observed. These features underline the potential of these superstructures for applications in surface-enhanced spectroscopies, plasmonic photocatalysis, and advanced optical manipulation in switchable optical metamaterials.

摘要

五角形金纳米双锥体(AuBP)的薄膜等离子体超晶体展现出多种堆积结构,这些结构会影响增强电场的近场分布和远场响应。通过改变包覆配体的分子量,可以改变各向异性结构单元的柔软度。全面的结构表征表明,这对自组装产生的超结构的影响比各向同性结构单元更为复杂。较软的包覆会导致单层中排列的区域更小,而双层则表现出更多的结晶区域,其层间扭转角主要接近0°和90°。使用微吸收光谱和电子能量损失谱(EELS)测量远场分布和近场响应。将这些数据与高分辨率透射电子显微镜(HR-TEM)结构分析相关联,能够识别纵向和横向的单个及集体等离子体模式。值得注意的是,对于大的结晶双层区域,观察到了强烈的偏振依赖性光学响应。这些特性突显了这些超结构在表面增强光谱学、等离子体光催化以及可切换光学超材料中的先进光学操纵等应用方面的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8cf2/12332831/2d25bd9e614b/SMLL-21-2500389-g007.jpg

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