Department of Chemistry and Chemical Engineering, Chalmers University of Technology , 41296 Göteborg, Sweden.
Department of Science and Technology, Laboratory for Organic Electronics, Linköping University , 60174 Norrköping, Sweden.
Nano Lett. 2017 Nov 8;17(11):7033-7039. doi: 10.1021/acs.nanolett.7b03665. Epub 2017 Oct 18.
Plasmonic color generation offers several advantages but is also limited by the cost and availability of noble metals like gold. In this work, we present color-tunable metasurfaces with high chromaticity and reflectivity consisting of an aluminum mirror, a dielectric spacer, and a plasmonic nanohole array in copper. Copper is shown to be an excellent alternative to gold when properly protected from oxidation and makes it possible to generate a wide RGB gamut covering 27% of the standard RGB. By patterning the metasurfaces into microscale pixel triplets, color photos can be well reproduced with high resolution over wafer-sized areas. Further, we demonstrate active modulation of the reflected intensity using an electrochromic conductive polymer deposited on top of the nanostructures by screen printing. This technology opens up for ultrathin and flexible reflective displays in full color, that is, plasmonic electronic paper, compatible with large-scale sustainable production.
等离子体颜色生成具有多个优势,但也受到成本和贵金属(如金)的可用性限制。在这项工作中,我们提出了由铝镜、介电间隔层和铜中的等离子体纳米孔阵列组成的具有高色度和反射率的可调谐超表面。当铜得到适当的保护以防止氧化时,它被证明是金的极好替代品,并且可以生成一个宽的 RGB 色域,覆盖标准 RGB 的 27%。通过将超表面图案化为微尺度像素三联体,可以在晶圆级大面积上以高分辨率很好地再现彩色照片。此外,我们通过丝网印刷在纳米结构上沉积电致变色导电聚合物,演示了反射强度的主动调制。这项技术为全彩色的超薄、灵活的反射显示器开辟了道路,即等离子体电子纸,与大规模可持续生产兼容。