论文标题

预测无序光子球膜的结构颜色

Predicting the structural colors of films of disordered photonic balls

论文作者

Stephenson, Anna B., Xiao, Ming, Hwang, Victoria, Qu, Liangliang, Odorisio, Paul A., Burke, Michael, Task, Keith, Deisenroth, Ted, Barkley, Solomon, Darji, Rupa H., Manoharan, Vinothan N.

论文摘要

光子球是直径数十微米的球,其中包含纳米颗粒或纳米孔的组件,其间距可与光的波长相当。当这些纳米级特征无序但仍然相关时,光子球可以显示出低角度依赖性的结构色。它们的颜色,结合了将它们添加到液体配方中的能力,使光子球成为有希望的新型涂料,涂料和其他应用的色素颗粒。但是,预测光子球制成的材料的颜色是一项挑战,因为必须考虑球几何形状和多个散射。为了应对这些挑战,我们开发了一种多尺度建模方法,该方法涉及两个不同尺度上多个散射的蒙特卡洛模拟:我们在光子球中模拟多个散射和吸收,然后使用结果模拟光子球膜中的多个散射和吸收。在对实验光谱进行验证后,我们使用该模型表明光子球的膜以与纳米孔或纳米颗粒的均匀膜的根本不同方式散布光,因为它们的表面积增加和球的界面上的折射。相对于均匀的纳米结构膜,这两种效果往往会急剧降低颜色饱和度。我们表明,可以通过将吸收器直接放入光子球并缓解表面粗糙度来实现饱和颜色。有了这些设计规则,我们表明光子球膜比均匀的纳米结构膜具有优势:它们的颜色甚至不太依赖角度。

Photonic balls are spheres tens of micrometers in diameter containing assemblies of nanoparticles or nanopores with a spacing comparable to the wavelength of light. When these nanoscale features are disordered, but still correlated, the photonic balls can show structural color with low angle-dependence. Their colors, combined with the ability to add them to a liquid formulation, make photonic balls a promising new type of pigment particle for paints, coatings, and other applications. However, it is challenging to predict the color of materials made from photonic balls, because the sphere geometry and multiple scattering must be accounted for. To address these challenges, we develop a multiscale modeling approach involving Monte Carlo simulations of multiple scattering at two different scales: we simulate multiple scattering and absorption within a photonic ball and then use the results to simulate multiple scattering and absorption in a film of photonic balls. After validating against experimental spectra, we use the model to show that films of photonic balls scatter light in fundamentally different ways than do homogeneous films of nanopores or nanoparticles, because of their increased surface area and refraction at the interfaces of the balls. Both effects tend to sharply reduce color saturation relative to a homogeneous nanostructured film. We show that saturated colors can be achieved by placing an absorber directly in the photonic balls and mitigating surface roughness. With these design rules, we show that photonic-ball films have an advantage over homogeneous nanostructured films: their colors are even less dependent on the angle.

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