English

Role of short-range order in manipulating light absorption in disordered media

Mesoscale and Nanoscale Physics 2018-02-06 v1 Disordered Systems and Neural Networks Optics

Abstract

Structural correlations have a significant effect on light propagation in disordered media. We numerically investigate the role of short-range order in light absorption in thin films with disordered nanoholes. Two types of disordered distributions, including stealthy hyperuniform (SHU) and hard disk (HD) patterns with different degrees of short-range order, are studied. We find that Bragg scattering induced by short-range order results in the appearance of a gradually sharper absorption peak with the increasing of degrees of short-range order (χ\chi, ϕ\phi). A physical model is proposed to calculate the in-plane angularly differential scattering cross section dσ/dθd \sigma^*/d \theta of thin-film nanostructures with consideration of {the} structure factor S(q)S(q). Results reveal that higher level of short-range order can enhance in-plane Bragg scattering in certain wavelengths and directions corresponding to rich and sharp peaks in {the} structure factor S(q)S(q), which can further modify morphology-dependent-like resonances of an individual scatterer {and leads } to {large} improvement of absorptivity in thin films. Besides, the comparison results show that SHU structures exhibit better integrated absorption (IAIA) enhancement than both HD and periodic structures. And there is a transition of local-order phase between hexagonal lattice{s} and square lattice{s for SHU structures}, leading to an optimal absorption performance when χ\chi is around 0.5 of interest. The present study paves a way in controlling light absorption and scattering using novel disordered nanostructures.

Keywords

Cite

@article{arxiv.1801.02770,
  title  = {Role of short-range order in manipulating light absorption in disordered media},
  author = {M. Q. Liu and C. Y. Zhao and B. X. Wang and Xing Fang},
  journal= {arXiv preprint arXiv:1801.02770},
  year   = {2018}
}

Comments

10 pages, 12 figures