» Articles » PMID: 31448332

Iridescence-controlled and Flexibly Tunable Retroreflective Structural Color Film for Smart Displays

Overview
Journal Sci Adv
Specialties Biology
Science
Date 2019 Aug 27
PMID 31448332
Citations 18
Authors
Affiliations
Soon will be listed here.
Abstract

Structural color materials, which use nano- or microstructures to reflect specific wavelengths of ambient white light, have drawn much attention owing to their wide applications ranging from optoelectronics, coatings, to energy-efficient reflective displays. Although various structural color materials based on specular or diffuse reflection have been demonstrated, neither efficient retroreflective structural colors nor iridescent and non-iridescent colors to different observers simultaneously were reported by existing artificial or natural structural color materials. Here, we show that by partially embedding a monolayer of polymer microspheres on the sticky side of a transparent tape, the spontaneously formed interferometric structure on the surface of air-cushioned microspheres can lead to unique structural colors that remain non-iridescent under coaxial illumination and viewing conditions, but appear iridescent under noncoaxial illumination and viewing conditions. Our findings demonstrate a smart, energy-efficient, and tunable retroreflective structural color material that is especially suitable for nighttime traffic safety and advertisement display applications.

Citing Articles

Lignin Ultrafiltration Fractionation and Self-Assembly to Monodisperse Nanoparticles for Photonic Materials.

Long J, Lu J, Chen L, Qiu X, Liu Q, Qin Y ACS Omega. 2025; 10(6):6210-6219.

PMID: 39989829 PMC: 11840599. DOI: 10.1021/acsomega.4c11260.


Analytical microscopy techniques using coaxial and oblique illuminations to detect thin glass particulates generated from glass vials for parenteral drug products.

Sanni A, Opalade A, Shamirian A, Mattson S, Driscoll E, St Martin M Appl Microsc. 2024; 54(1):9.

PMID: 39441435 PMC: 11499564. DOI: 10.1186/s42649-024-00101-3.


Polyurethane-polypyrrole hybrid structural color films for dual-signal mechanics sensing.

Shao C, Yu Y, Fan Q, Wang X, Ye F Smart Med. 2024; 1(1):e20220008.

PMID: 39188741 PMC: 11235726. DOI: 10.1002/SMMD.20220008.


Angle-Multiplexed 3D Photonic Superstructures with Multi-Directional Switchable Structural Color for Information Transformation, Storage, and Encryption.

Wang T, Wang Y, Fu Y, Chen Z, Jiang C, Ji Y Adv Sci (Weinh). 2024; 11(28):e2400442.

PMID: 38757669 PMC: 11267312. DOI: 10.1002/advs.202400442.


Coloration on Bluish Alginate Films with Amorphous Heterogeneity Thereof.

Yang S, Kang D, Lee C Polymers (Basel). 2023; 15(17).

PMID: 37688253 PMC: 10489677. DOI: 10.3390/polym15173627.


References
1.
Vukusic P, Sambles J, Lawrence C . Colour mixing in wing scales of a butterfly. Nature. 2000; 404(6777):457. DOI: 10.1038/35006561. View

2.
Plainis S, Murray I . Reaction times as an index of visual conspicuity when driving at night. Ophthalmic Physiol Opt. 2002; 22(5):409-15. DOI: 10.1046/j.1475-1313.2002.00076.x. View

3.
Plainis S, Murray I, Pallikaris I . Road traffic casualties: understanding the night-time death toll. Inj Prev. 2006; 12(2):125-8. PMC: 2564438. DOI: 10.1136/ip.2005.011056. View

4.
Whitney H, Kolle M, Andrew P, Chittka L, Steiner U, Glover B . Floral iridescence, produced by diffractive optics, acts as a cue for animal pollinators. Science. 2009; 323(5910):130-3. DOI: 10.1126/science.1166256. View

5.
Noh H, Liew S, Saranathan V, Mochrie S, Prum R, Dufresne E . How noniridescent colors are generated by quasi-ordered structures of bird feathers. Adv Mater. 2010; 22(26-27):2871-80. DOI: 10.1002/adma.200903699. View