Literature DB >> 33472972

Designing angle-independent structural colors using Monte Carlo simulations of multiple scattering.

Victoria Hwang1, Anna B Stephenson1, Solomon Barkley2, Soeren Brandt1, Ming Xiao1, Joanna Aizenberg1,3, Vinothan N Manoharan4,2.   

Abstract

Disordered nanostructures with correlations on the scale of visible wavelengths can show angle-independent structural colors. These materials could replace dyes in some applications because the color is tunable and resists photobleaching. However, designing nanostructures with a prescribed color is difficult, especially when the application-cosmetics or displays, for example-requires specific component materials. A general approach to solving this constrained design problem is modeling and optimization: Using a model that predicts the color of a given system, one optimizes the model parameters under constraints to achieve a target color. For this approach to work, the model must make accurate predictions, which is challenging because disordered nanostructures have multiple scattering. To address this challenge, we develop a Monte Carlo model that simulates multiple scattering of light in disordered arrangements of spherical particles or voids. The model produces quantitative agreement with measurements when we account for roughness on the surface of the film, particle polydispersity, and wavelength-dependent absorption in the components. Unlike discrete numerical simulations, our model is parameterized in terms of experimental variables, simplifying the connection between simulation and fabrication. To demonstrate this approach, we reproduce the color of the male mountain bluebird (Sialia currucoides) in an experimental system, using prescribed components and a microstructure that is easy to fabricate. Finally, we use the model to find the limits of angle-independent structural colors for a given system. These results enable an engineering design approach to structural color for many different applications.

Entities:  

Keywords:  Monte Carlo; engineering design; multiple scattering; structural color

Year:  2021        PMID: 33472972      PMCID: PMC7848739          DOI: 10.1073/pnas.2015551118

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   12.779


  28 in total

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5.  Amorphous diamond-structured photonic crystal in the feather barbs of the scarlet macaw.

Authors:  Haiwei Yin; Biqin Dong; Xiaohan Liu; Tianrong Zhan; Lei Shi; Jian Zi; Eli Yablonovitch
Journal:  Proc Natl Acad Sci U S A       Date:  2012-05-21       Impact factor: 11.205

Review 6.  Interactions between colour-producing mechanisms and their effects on the integumentary colour palette.

Authors:  Matthew D Shawkey; Liliana D'Alba
Journal:  Philos Trans R Soc Lond B Biol Sci       Date:  2017-07-05       Impact factor: 6.237

7.  Structural color mechanism in the Papilio blumei butterfly.

Authors:  Mei-Ling Lo; Cheng-Chung Lee
Journal:  Appl Opt       Date:  2014-02-01       Impact factor: 1.980

8.  Introduction to the Maxwell Garnett approximation: tutorial.

Authors:  Vadim A Markel
Journal:  J Opt Soc Am A Opt Image Sci Vis       Date:  2016-07-01       Impact factor: 2.129

9.  The limitations of extending nature's color palette in correlated, disordered systems.

Authors:  Gianni Jacucci; Silvia Vignolini; Lukas Schertel
Journal:  Proc Natl Acad Sci U S A       Date:  2020-09-08       Impact factor: 11.205

10.  Structural Color Tuning: Mixing Melanin-Like Particles with Different Diameters to Create Neutral Colors.

Authors:  Ayaka Kawamura; Michinari Kohri; Shinya Yoshioka; Tatsuo Taniguchi; Keiki Kishikawa
Journal:  Langmuir       Date:  2017-04-07       Impact factor: 3.882

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  8 in total

1.  Universal Theory of Light Scattering of Randomly Oriented Particles: A Fluctuational-Electrodynamics Approach for Light Transport Modeling in Disordered Nanostructures.

Authors:  Francisco V Ramirez-Cuevas; Kargal L Gurunatha; Ivan P Parkin; Ioannnis Papakonstantinou
Journal:  ACS Photonics       Date:  2022-02-04       Impact factor: 7.077

2.  Designing angle-independent structural colors using Monte Carlo simulations of multiple scattering.

Authors:  Victoria Hwang; Anna B Stephenson; Solomon Barkley; Soeren Brandt; Ming Xiao; Joanna Aizenberg; Vinothan N Manoharan
Journal:  Proc Natl Acad Sci U S A       Date:  2021-01-26       Impact factor: 12.779

3.  Freeze-derived heterogeneous structural color films.

Authors:  Shuangshuang Miao; Yu Wang; Lingyu Sun; Yuanjin Zhao
Journal:  Nat Commun       Date:  2022-07-13       Impact factor: 17.694

4.  Three-dimensional printing of photonic colloidal glasses into objects with isotropic structural color.

Authors:  Ahmet F Demirörs; Erik Poloni; Maddalena Chiesa; Fabio L Bargardi; Marco R Binelli; Wilhelm Woigk; Lucas D C de Castro; Nicole Kleger; Fergal B Coulter; Alba Sicher; Henning Galinski; Frank Scheffold; André R Studart
Journal:  Nat Commun       Date:  2022-07-29       Impact factor: 17.694

5.  Inkjet Printing of Structurally Colored Self-Assembled Colloidal Aggregates.

Authors:  Pavel Yazhgur; Nicolas Muller; Frank Scheffold
Journal:  ACS Photonics       Date:  2022-08-02       Impact factor: 7.077

6.  Spectral imaging of normal, hydrated, and desiccated porcine skin using polarized light.

Authors:  Ben E Urban; Steven L Jacques; Hrebesh M Subhash
Journal:  J Biomed Opt       Date:  2022-10       Impact factor: 3.758

7.  Deconvoluting the Optical Response of Biocompatible Photonic Pigments.

Authors:  Zhen Wang; Chun Lam Clement Chan; Johannes S Haataja; Lukas Schertel; Ruiting Li; Gea T van de Kerkhof; Oren A Scherman; Richard M Parker; Silvia Vignolini
Journal:  Angew Chem Int Ed Engl       Date:  2022-07-13       Impact factor: 16.823

8.  Prediction and Inverse Design of Structural Colors of Nanoparticle Systems via Deep Neural Network.

Authors:  Lanxin Ma; Kaixiang Hu; Chengchao Wang; Jia-Yue Yang; Linhua Liu
Journal:  Nanomaterials (Basel)       Date:  2021-12-08       Impact factor: 5.076

  8 in total

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