4.8 Article

Wettability-Controlled Directional Actuating Strategy Based on Bilayer Photonic Crystals

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 13, 期 1, 页码 2007-2017

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsami.0c19313

关键词

actuator; bilayer photonic crystal; wettability; swelling; directional bending

资金

  1. National Natural Science Foundation of China [21878040, 21536002, 21421005]
  2. Fundamental Research Funds for the Central Universities [DUT19TD28]
  3. Natural Science Foundation of Liaoning Province [2019-MS-037]
  4. Liaoning Revitalization Talent Program [CLXC1801006]

向作者/读者索取更多资源

This study prepared bilayer directional bending structural color actuators with visible color changes based on the hydrophilic differences, using photonic crystals as carriers. By controlling the hydrophilicity differences of top and bottom inverse opal, directional bending effect was achieved. The different wettability led to various optical responses and swelling performances, realized through water infiltration and capillary evaporation.
Although the water-triggered bending behavior of bilayer films has been a wide concerned, there are few reports on wettability-controlled directional actuators with visible color changes. Using photonic crystals as carriers, bilayer directional bending structural color actuators were prepared based on the hydrophilic difference. Top inverse opal with strong hydrophilicity can promote water penetration and strengthen the effect of swelling. While, bottom inverse opal with weak hydrophilicity can inhibit water penetration and weaken the effect of swelling. When the bilayer structure is immersed in water, its wettability differences will produce different optical responses for visualization and will bring different swelling performances, resulting in directional bending. Infiltration differences are visualized as structural color red shifts or transparency. The mechanism of the design involves optical diffractions in the fabricated periodic nanostructures, differences in the surface wettability and swelling rate, uses the infiltration and capillary evaporation of water to realize the spectral diversity of reflectance, and the enhancement of bending by gradient infiltration. This work deeply analyzes the improvement of the photonic crystal structure on the optical and bending performance of the wettability-controlled actuator, provides a basic model for the design of bionic components, and opens an idea for the combination of bilayer photonic crystals and actuators.

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