4.8 Article

Scalable Inkjet-Based Structural Color Printing by Molding Transparent Gratings on Multilayer Nanostructured Surfaces

期刊

ACS NANO
卷 12, 期 4, 页码 3112-3125

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.7b08580

关键词

inkjet printing; structural color; titanium dioxide nanoparticle; subwavelength grating; diffractive color; optical variable device; transparent display

资金

  1. Natural Sciences and Engineering Research Council (NSERC) of Canada, under Collaborative Research and Development (CRD) Grant [614108, 569260]
  2. Canada Foundation for Innovation (CFI)
  3. British Columbia Knowledge Development Fund (BCKDF)
  4. Western Economic Diversification Canada (WD)
  5. Simon Fraser University (SFU)

向作者/读者索取更多资源

To enable customized manufacturing of structural colors for commercial applications, up-scalable, low-cost, rapid, and versatile printing techniques are highly demanded. In this paper, we introduce a viable strategy for scaling up production of custom-input images by patterning individual structural colors on separate layers, which are then vertically stacked and recombined into full-color images. By applying this strategy on molded-ink-on-nanostructured-surface printing, we present an industry applicable inkjet structural color printing technique termed multilayer molded-ink-on-nanostructured-surface (M-MIONS) printing, in which structural color pixels are molded on multiple layers of nanostructured surfaces. Transparent colorless titanium dioxide nanoparticles were inkjet-printed onto three separate transparent polymer substrates, and each substrate surface has one specific subwavelength grating pattern for molding the deposited nanoparticles into structural color pixels of red, green, or blue primary color. After index-matching lamination, the three layers were vertically stacked and bonded to display a color image. Each primary color can be printed into a range of different shades controlled through a half-tone process, and full colors were achieved by mixing primary colors from three layers. In our experiments, an image size as big as 10 cm by 10 cm was effortlessly achieved, and even larger images can potentially be printed on recombined grating surfaces. In one application example, the M-MIONS technique was used for printing customizable transparent color optical variable devices for protecting personalized security documents. In another example, a transparent diffractive color image printed with the M-MIONS technique was pasted onto a transparent panel for overlaying colorful information onto one's view of reality.

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