Chiao Zong-Yi, Chen Yu-Chia, Chen Jia-Wern, Chu Yu-Cheng, Yang Jing-Wei, Peng Tzu-Yu, Syong Wei-Ren, Lee Ho Wai Howard, Chu Shi-Wei, Lu Yu-Jung
Research Center for Applied Sciences, Academia Sinica, Taipei 11529, Taiwan.
Department of Physics, National Taiwan University, Taipei 10617, Taiwan.
Nanophotonics. 2022 May 6;11(12):2891-2899. doi: 10.1515/nanoph-2022-0071. eCollection 2022 Jun.
Plasmonic structural color, in which vivid colors are generated via resonant nanostructures made of common plasmonic materials, such as noble metals have fueled worldwide interest in backlight-free displays. However, plasmonic colors that were withstanding ultrahigh temperatures without damage remain an unmet challenge due to the low melting point of noble metals. Here, we report the refractory hafnium nitride (HfN) plasmonic crystals that can generate full-visible color with a high image resolution of ∼63,500 dpi while withstanding a high temperature (900 °C). Plasmonic colors that reflect visible light could be attributed to the unique features in plasmonic HfN, a high bulk plasmon frequency of 3.1 eV, whichcould support localized surface plasmon resonance (LSPR) in the visible range. By tuning the wavelength of the LSPR, the reflective optical response can be controlled to generate the colors from blue to red across a wide gamut. The novel refractory plasmonic colors pave the way for emerging applications ranging from reflective displays to solar energy harvesting systems.
等离子体结构色是通过由常见等离子体材料(如贵金属)制成的共振纳米结构产生鲜艳颜色,这激发了全球对无背光源显示器的兴趣。然而,由于贵金属熔点低,能承受超高温而不损坏的等离子体颜色仍然是一个未解决的挑战。在此,我们报道了难熔的氮化铪(HfN)等离子体晶体,它能在承受高温(900°C)的同时,以约63500 dpi的高图像分辨率产生全可见光颜色。反射可见光的等离子体颜色可归因于等离子体HfN的独特特性,其高体等离子体频率为3.1 eV,这可以支持可见光范围内的局域表面等离子体共振(LSPR)。通过调整LSPR的波长,可以控制反射光学响应,以在很宽的色域内产生从蓝色到红色的颜色。这种新型难熔等离子体颜色为从反射显示器到太阳能收集系统等新兴应用铺平了道路。