Department of Chemical and Biological Engineering, Northwestern University, Evanston, IL, 60208, USA.
International Institute for Nanotechnology, Northwestern University, Evanston, IL, 60208, USA.
Small. 2022 Aug;18(33):e2201171. doi: 10.1002/smll.202201171. Epub 2022 Jul 20.
Broadband absorbers are useful ultraviolet protection, energy harvesting, sensing, and thermal imaging. The thinner these structures are, the more device-relevant they become. However, it is difficult to synthesize ultrathin absorbers in a scalable and straightforward manner. A general and straightforward synthetic strategy for preparing ultrathin, broadband metasurface absorbers that do not rely on cumbersome lithographic steps is reported. These materials are prepared through the surface-assembly of plasmonic octahedral nanoframes (NFs) into large-area ordered monolayers via drop-casting with subsequent air-drying at room temperature. This strategy is used to produce three types of ultrathin broadband absorbers with thicknesses of ≈200 nm and different lattice symmetries (loose hexagonal, twisted hexagonal, dense hexagonal), all of which exhibit efficient light absorption (≈90%) across wavelengths ranging from 400-800 nm. Their broadband absorption is attributed to the hollow morphologies of the NFs, the incorporation of a high-loss material (i.e., Pt), and the strong field enhancement resulting from surface assembly. The broadband absorption is found to be polarization-independent and maintained for a wide range of incidence angles (±45°). The ability to design and fabricate broadband metasurface absorbers using this high-throughput surface-based assembly strategy is a significant step toward the large-scale, rapid manufacturing of nanophotonic structures and devices.
宽带吸收体在紫外防护、能量收集、传感和热成像等方面具有重要作用。这些结构越薄,与器件的相关性就越强。然而,很难以可扩展且直接的方式合成超薄吸收体。本文报道了一种通用且直接的合成策略,用于制备不依赖于繁琐光刻步骤的超薄宽带超表面吸收体。这些材料是通过将等离子体八面体纳米框架(NFs)通过滴铸在室温下空气干燥而自组装成大面积有序单层来制备的。该策略用于制备三种不同晶格对称性(疏松六方、扭曲六方和密集六方)的超薄宽带吸收体,其厚度约为 200nm,它们在 400-800nm 的波长范围内都表现出高效的光吸收(约 90%)。它们的宽带吸收归因于 NFs 的空心形态、高损耗材料(即 Pt)的掺入以及表面组装产生的强场增强。宽带吸收与偏振无关,并能保持宽的入射角范围(±45°)。使用这种高通量基于表面的组装策略来设计和制造宽带超表面吸收体是实现纳米光子结构和器件大规模快速制造的重要一步。