Electrical and Computer Engineering Department, Lehigh University, Bethlehem, PA 18015.
Sci Rep. 2013 Oct 8;3:2840. doi: 10.1038/srep02840.
Plasmonic color filters employing a single optically-thick nanostructured metal layer have recently generated considerable interest as an alternative to colorant-based color filtering technologies, due to their reliability, ease of fabrication, and high color tunability. However, their relatively low transmission efficiency (30%) needs to be significantly improved for practical applications. The present work reports, for the first time, a novel plasmonic subtractive color filtering scheme that exploits the counter-intuitive phenomenon of extraordinary low transmission (ELT) through an ultrathin nanostructured metal film. This approach relies on a fundamentally different color filtering mechanism than that of existing plasmonic additive color filters, and achieves unusually high transmission efficiencies of 60 ~ 70% for simple architectures. Furthermore, owing to short-range interactions of surface plasmon polaritons at ELT resonances, our design offers high spatial resolution color filtering with compact pixel size close to the optical diffraction limit (λ/2), creating solid applications ranging from imaging sensors to color displays.
最近,采用单层光学厚纳米结构金属层的等离子体颜色滤波器由于其可靠性、易于制造和高颜色可调性,作为基于着色剂的颜色过滤技术的替代品引起了相当大的兴趣。然而,它们相对较低的传输效率(约 30%)需要显著提高,才能在实际应用中使用。本工作首次报道了一种新颖的等离子体相减法颜色过滤方案,该方案利用了通过超薄纳米结构金属膜的反常低传输(ELT)现象。这种方法依赖于与现有等离子体加法颜色滤波器根本不同的颜色过滤机制,并实现了简单结构 60%至 70%的异常高传输效率。此外,由于表面等离激元极化激元在 ELT 共振处的短程相互作用,我们的设计提供了具有接近光学衍射极限(~λ/2)的紧凑像素尺寸的高空间分辨率颜色过滤,为从成像传感器到彩色显示器的各种应用创造了坚实的基础。