Optical Functional Materials Laboratory, Toyota Technological Institute, 2-12-1 Hisakata, Tempaku, Nagoya, Aichi 468-8511, Japan.
J Colloid Interface Sci. 2011 Jan 15;353(2):454-8. doi: 10.1016/j.jcis.2010.10.011. Epub 2010 Oct 13.
Chalcogenide opal and inverse opal photonic crystals were successfully fabricated by low-cost and low-temperature solution-based process, which is well developed in polymer films processing. Highly ordered silica colloidal crystal films were successfully infilled with nano-colloidal solution of the high refractive index As(30)S(70) chalcogenide glass by using spin-coating method. The silica/As-S opal film was etched in HF acid to dissolve the silica opal template and fabricate the inverse opal As-S photonic crystal. Both, the infilled silica/As-S opal film (Δn ~ 0.84 near λ=770 nm) and the inverse opal As-S photonic structure (Δn ~ 1.26 near λ=660 nm) had significantly enhanced reflectivity values and wider photonic bandgaps in comparison with the silica opal film template (Δn ~ 0.434 near λ=600 nm). The key aspects of opal film preparation by spin-coating of nano-colloidal chalcogenide glass solution are discussed. The solution fabricated "inorganic polymer" opal and the inverse opal structures exceed photonic properties of silica or any organic polymer opal film. The fabricated photonic structures are proposed for designing novel flexible colloidal crystal laser devices, photonic waveguides and chemical sensors.
通过低成本、低温的基于溶液的工艺成功制备了硫属化物蛋白石和反蛋白石光子晶体,该工艺在聚合物薄膜加工中得到了很好的发展。采用旋涂法成功地用高折射率的 As(30)S(70) 硫属化物玻璃纳米胶体溶液填充高度有序的二氧化硅胶体晶体薄膜。通过在 HF 酸中刻蚀二氧化硅蛋白石模板,制备了反蛋白石 As-S 光子晶体。填充的二氧化硅/As-S 蛋白石薄膜(在 λ=770nm 附近的Δn≈0.84)和反蛋白石 As-S 光子结构(在 λ=660nm 附近的Δn≈1.26)与二氧化硅蛋白石薄膜模板(在 λ=600nm 附近的Δn≈0.434)相比,具有显著增强的反射率值和更宽的光子带隙。讨论了通过旋涂纳米胶体硫属化物玻璃溶液制备蛋白石薄膜的关键方面。所制备的“无机聚合物”蛋白石和反蛋白石结构超过了二氧化硅或任何有机聚合物蛋白石薄膜的光子性能。所制备的光子结构可用于设计新型柔性胶体晶体激光器件、光子波导和化学传感器。