Kleine Tristan S, Diaz Liliana Ruiz, Konopka Katrina M, Anderson Laura E, Pavlopolous Nicholas G, Lyons Nicholas P, Kim Eui Tae, Kim Youngkeol, Glass Richard S, Char Kookheon, Norwood Robert A, Pyun Jeffrey
Department of Chemistry and Biochemistry, University of Arizona, 1306 East University Boulevard, Tucson, Arizona 85721, United States.
College of Optical Sciences, University of Arizona, 1630 East University Boulevard, Tucson, Arizona 85721, United States.
ACS Macro Lett. 2018 Jul 17;7(7):875-880. doi: 10.1021/acsmacrolett.8b00245. Epub 2018 Jul 2.
We report on the fabrication of wholly polymeric one-dimensional (1-D) photonic crystals (i.e., Bragg reflectors, Bragg mirrors) via solution processing for use in the near (NIR) and the short wave (SWIR) infrared spectrum (1-2 μm) with very high reflectance ( ∼ 90-97%). Facile fabrication of these highly reflective films was enabled by direct access to solution processable, ultrahigh refractive index polymers, termed, Chalcogenide Hybrid Inorganic/Organic Polymers (CHIPs). The high refractive index () of CHIPs materials ( = 1.75-2.10) allowed for the production of narrow band IR Bragg reflectors with high refractive index contrast (Δ ∼ 0.5) when fabricated with low polymers, such as cellulose acetate ( = 1.47). This is the highest refractive index contrast (Δ ∼ 0.5) demonstrated for an all-polymeric Bragg mirror which directly enabled high reflectivity from films with 22 layers or less. Facile access to modular, thin, highly reflective films from inexpensive CHIPs materials offers a new route to IR Bragg reflectors and other reflective coatings with potential applications for IR photonics, commercial sensing, and LIDAR applications.
我们报道了通过溶液加工制备全聚合物一维(1-D)光子晶体(即布拉格反射器、布拉格镜),用于近红外(NIR)和短波红外(SWIR)光谱(1-2μm),具有非常高的反射率(约90-97%)。通过直接使用可溶液加工的超高折射率聚合物,即硫族化物杂化无机/有机聚合物(CHIPs),实现了这些高反射膜的简便制备。当与低折射率聚合物(如醋酸纤维素,折射率 = 1.47)一起制备时,CHIPs材料的高折射率(n = 1.75-2.10)使得能够生产具有高折射率对比度(Δn约为0.5)的窄带红外布拉格反射器。这是全聚合物布拉格镜所展示的最高折射率对比度(Δn约为0.5),直接使得22层或更少层数的薄膜具有高反射率。从廉价的CHIPs材料轻松获得模块化、薄的高反射膜,为红外布拉格反射器和其他反射涂层提供了一条新途径,在红外光子学、商业传感和激光雷达应用中具有潜在应用。