Reconfigurable structural color generation in multicolor pixels using phase-change materials

We introduce multilayer structures based on phase-change materials for reconfigurable structural color generation. These structures can produce multiple distinct colors within a single pixel. Specifically, we design structures that generate either two or four maximally distinct structural colors. We employ a memetic optimization algorithm coupled with the impedance method to identify the optimal combination of materials and layer thicknesses that maximizes the distinctiveness of the generated colors. We demonstrate that our design approach achieves strong color contrast between the generated colors. To elucidate the physical mechanism underlying the observed strong color contrast, we analyze the optimized design using a Fabry–Pérot cavity model. The proposed multilayer design eliminates the need for subwavelength lithography, making it highly suitable for large-scale applications. Our results could lead to a new class of single-cell multicolor pixels, which retain each color without power consumption, making them particularly appealing for low refresh rate displays.

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Publication Details

Journal
Journal of Applied Physics
Published
2026-09-10
DOI
https://doi.org/10.1063/5.0341663
Primary Topic
Phase-change materials and chalcogenides
Type
article
Field-Weighted Citation Impact
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article

Reconfigurable structural color generation in multicolor pixels using phase-change materials

Md Tanvir Emrose, Georgios Veronis, Yin Huang, Katherine Winchester
Journal of Applied Physics
Phase-change materials and chalcogenides
article

Reconfigurable structural color generation in multicolor pixels using phase-change materials

Md Tanvir Emrose, Georgios Veronis, Yin Huang, Katherine Winchester
article en

Abstract

We introduce multilayer structures based on phase-change materials for reconfigurable structural color generation. These structures can produce multiple distinct colors within a single pixel. Specifically, we design structures that generate either two or four maximally distinct structural colors. We employ a memetic optimization algorithm coupled with the impedance method to identify the optimal combination of materials and layer thicknesses that maximizes the distinctiveness of the generated colors. We demonstrate that our design approach achieves strong color contrast between the generated colors. To elucidate the physical mechanism underlying the observed strong color contrast, we analyze the optimized design using a Fabry–Pérot cavity model. The proposed multilayer design eliminates the need for subwavelength lithography, making it highly suitable for large-scale applications. Our results could lead to a new class of single-cell multicolor pixels, which retain each color without power consumption, making them particularly appealing for low refresh rate displays.

Journal of Applied PhysicsVol. 140(10)
Louisiana State University (US), Central South University (CN)
Openalex Percentile: Top 100%
Phase-change materials and chalcogenides
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Reconfigurable structural color generation in multicolor pixels using phase-change materials — Md Tanvir Emrose, Georgios Veronis, et al. · Journal of Applied Physics (2026) | TGRS Research Map | TGRS