Wang Danyan, Ji Chengang, Li Moxin, Xing Zhenyu, Gao Hao, Li Xiaochan, Zhou Huixian, Hu Yuhui, Lin Zhelin, Zhang Cheng
School of Optical and Electronic Information & Wuhan National Laboratory for Optoelectronics, Huazhong University of Science and Technology, Wuhan, Hubei 430074, China.
Ningbo Inlight Technology Co., Ltd, Ningbo, Zhejiang 315500, China.
Nanophotonics. 2024 Oct 30;13(24):4491-4503. doi: 10.1515/nanoph-2024-0471. eCollection 2024 Nov.
Structural colors, resulting from the interaction of light with nanostructured materials rather than pigments, present a promising avenue for diverse applications ranging from ink-free printing to optical anti-counterfeiting. Achieving structural colors with high purity and brightness over large areas and at low costs is beneficial for many practical applications, but still remains a challenge for current designs. Here, we introduce a novel approach to realizing large-scale structural colors in layered thin film structures that are characterized by both high brightness and purity. Unlike conventional designs relying on single Fabry-Pérot cavity resonance, our method leverages coupled resonance between adjacent cavities to achieve sharp and intense transmission peaks with significantly suppressed sideband intensity. We demonstrate this approach by designing and experimentally validating transmission-type red, green, and blue colors using an Ag/SiO/Ag/SiO/Ag configuration on fused silica substrate. The measured spectra exhibit narrow resonant linewidths (full width at half maximum ∼60 nm), high peak efficiencies (>40 %), and well-suppressed sideband intensities (∼0 %). In addition, the generated color can be easily tuned by adjusting the thickness of SiO layer, and the associated color gamut coverage shows a wider range than many existing standards. Moreover, the proposed design method is versatile and compatible with various choices of dielectric and metallic layers. For instance, we demonstrate the production of angle-robust structural colors by utilizing high-index TaO as the dielectric layer. Finally, we showcase a series of printed color images based on the proposed structures. The coupled-cavity-resonance architecture presented here successfully mitigates the trade-off between color brightness and purity in conventional layered thin film structures and provides a novel and cost-effective route towards the realization of large-scale and high-performance structural colors.
结构色是由光与纳米结构材料相互作用而非色素产生的,为从无墨印刷到光学防伪等各种应用提供了一条有前景的途径。在大面积上以低成本实现高纯度和高亮度的结构色对许多实际应用有益,但仍是当前设计面临的挑战。在此,我们介绍一种在具有高亮度和高纯度特征的层状薄膜结构中实现大规模结构色的新方法。与依赖单个法布里 - 珀罗腔共振的传统设计不同,我们的方法利用相邻腔之间的耦合共振来实现尖锐且强烈的透射峰,同时显著抑制边带强度。我们通过在熔融石英衬底上使用Ag/SiO/Ag/SiO/Ag结构设计并实验验证透射型红、绿、蓝颜色来证明这种方法。测量的光谱显示出窄的共振线宽(半高宽约60纳米)、高峰效率(>40%)以及良好抑制的边带强度(约0%)。此外,通过调整SiO层的厚度可以轻松调节产生的颜色,并且相关的色域覆盖范围比许多现有标准更宽。而且,所提出的设计方法具有通用性,与各种介电层和金属层的选择兼容。例如,我们通过使用高折射率的TaO作为介电层展示了角度稳健的结构色的产生。最后,我们展示了基于所提出结构的一系列印刷彩色图像。这里提出的耦合腔共振架构成功地减轻了传统层状薄膜结构中颜色亮度和纯度之间的权衡,并为实现大规模和高性能结构色提供了一条新颖且经济高效的途径。