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Role of Anisotropy and Refractive Index in Scattering and Whiteness Optimization

机译:各向异性和折射率在散射和白度优化中的作用

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摘要

The ability to manipulate light-matter interaction to tailor the scattering properties of materials is crucial to many aspects of everyday life, from paints to lighting, and to many fundamental concepts in disordered photonics. Light transport and scattering in a granular disordered medium are dictated by the spatial distribution (structure factor) and the scattering properties (form factor and refractive index) of its building blocks. As yet, however, the importance of anisotropy in such systems has not been considered. Here, a systematic numerical survey that disentangles and quantifies the role of different kinds and degrees of anisotropy in scattering optimization is reported. It is shown that ensembles of uncorrelated, anisotropic particles with nematic ordering enables to increase by 20% the reflectance of low-refractive index media (n = 1.55), using only three-quarters of material compared to their isotropic counterpart. Additionally, these systems exhibit a whiteness comparable to conventionally used high-refractive index media, e.g., TiO2 (n = 2.60). Therefore, the findings not only provide an understanding of the role of anisotropy in scattering optimization, but they also showcase a novel strategy to replace inorganic white enhancers with sustainable and biocompatible products made of biopolymers.
机译:操纵光-物质相互作用以调整材料的散射特性的能力对于从油漆到照明的日常生活的许多方面以及无序光子学的许多基本概念至关重要。颗粒无序介质中的光传输和散射由其结构单元的空间分布(结构因子)和散射特性(形状因子和折射率)决定。然而,到目前为止,尚未考虑各向异性在此类系统中的重要性。在这里,报告了一个系统的数值调查,该调查阐明并量化了不同种类和程度的各向异性在散射优化中的作用。结果表明,与向同性对应物相比,仅使用四分之三的材料,具有向列序的不相关各向异性粒子的集合体可使低折射率介质(n = 1.55)的反射率提高20%。另外,这些体系表现出的白度可与常规使用的高折射率介质,例如TiO2(n = 2.60)相媲美。因此,这些发现不仅提供了各向异性在散射优化中的作用的理解,而且还展示了一种新颖的策略,可以用生物聚合物制成的可持续且生物相容的产品替代无机白色增强剂。

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