Programming multicolour micro-patterns via regional polymer-stabilized heliconical soft architecture
Structural colours have broad applications in advanced photonics due to the various advantages of fade-resistance, high resolution and saturation. Nevertheless, leveraging the structural colours of adaptive systems with dynamical wide-colour-range tunability and achieving the regional modulation of...
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Veröffentlicht in: | Journal of materials chemistry. C, Materials for optical and electronic devices Materials for optical and electronic devices, 2022-11, Vol.10 (44), p.16924-16931 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | Structural colours have broad applications in advanced photonics due to the various advantages of fade-resistance, high resolution and saturation. Nevertheless, leveraging the structural colours of adaptive systems with dynamical wide-colour-range tunability and achieving the regional modulation of colourful and vibrant patterns with high saturation are always formidable challenges. Herein, we demonstrate a programming micro-patterns technology of heliconical architecture by regional polymer stabilization based on a polymerizable heliconical system, showing high saturation and full-colour range covering visible light by controlling an applied electric field. The strategy realizes a regionally tunable pattern of a dual structural colour grating, in which the grating pattern contains a stabilized colour and an electrically drivable colour, thus enabling the modulation, concealment, display and erasure of a desirable colourful pattern and its optical vortex diffraction with orbital angular momentum. In addition, a series of high-resolution multiple structural colour patterns of heliconical architecture by programming stepwise exposure are developed, realizing multicolour anti-counterfeiting labels with arbitrary designed patterns, reversible dual information switch and encryption, and matrix encoding of structural colours in a convenient, facile and power-saving way. We envision that this work can expand the understanding of integrated and systematic photonics engineering, and inspire the practicality and development of adaptive photonics. |
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ISSN: | 2050-7526 2050-7534 |
DOI: | 10.1039/D2TC03671A |