Lu Juanjuan, Zhang Di, Paldi Robynne L, He Zihao, Lu Ping, Deitz Julia, Ahmad Ahmad, Dou Hongyi, Wang Xuejing, Liu Juncheng, Hu Zedong, Yang Bo, Zhang Xinghang, El-Azab Anter A, Wang Haiyan
School of Materials Engineering, Purdue University, West Lafayette, Indiana 47907, USA.
Center for Integrated Nanotechnologies (CINT), Los Alamos National Laboratory, Los Alamos, NM 87545, USA.
Mater Horiz. 2023 Jul 31;10(8):3101-3113. doi: 10.1039/d3mh00233k.
Metamaterials present great potential in the applications of solar cells and nanophotonics, such as super lenses and other meta devices, owing to their superior optical properties. In particular, hyperbolic metamaterials (HMMs) with exceptional optical anisotropy offer improved manipulation of light-matter interactions as well as a divergence in the density of states and thus show enhanced performances in related fields. Recently, the emerging field of oxide-metal vertically aligned nanocomposites (VANs) suggests a new approach to realize HMMs with flexible microstructural modulations. In this work, a new oxide-metal metamaterial system, CeO-Au, has been demonstrated with variable Au phase morphologies from nanoparticle-in-matrix (PIM), nanoantenna-in-matrix, to VAN. The effective morphology tuning through deposition background pressure, and the corresponding highly tunable optical performance of three distinctive morphologies, were systematically explored and analyzed. A hyperbolic dispersion at high wavelength has been confirmed in the nano-antenna CeO-Au thin film, proving this system as a promising candidate for HMM applications. More interestingly, a new and abnormal in-plane epitaxy of Au nanopillars following the large mismatched CeO matrix instead of the well-matched SrTiO substrate, was discovered. Additionally, the tilting angle of Au nanopillars, , has been found to be a quantitative measure of the balance between kinetics and thermodynamics during the depositions of VANs. All these findings provide valuable information in the understanding of the VAN formation mechanisms and related morphology tuning.
超材料因其卓越的光学特性,在太阳能电池和纳米光子学应用中展现出巨大潜力,如超透镜和其他超材料器件。特别是具有特殊光学各向异性的双曲线超材料(HMMs),能更好地操控光与物质的相互作用,且态密度存在发散,因此在相关领域表现出增强的性能。近来,新兴的氧化物 - 金属垂直排列纳米复合材料(VANs)领域为实现具有灵活微结构调制的HMMs提供了一种新方法。在这项工作中,已展示了一种新的氧化物 - 金属超材料体系CeO - Au,其具有从基质中纳米颗粒(PIM)、基质中纳米天线到VAN的可变金相形态。通过沉积背景压力对有效形态进行调控,并系统地探索和分析了三种独特形态相应的高度可调光学性能。在纳米天线CeO - Au薄膜中已证实了高波长处的双曲线色散,证明该体系是HMM应用的一个有前景的候选者。更有趣的是,发现了金纳米柱在大失配的CeO基质而非匹配良好的SrTiO衬底上呈现出新的异常面内外延。此外,已发现金纳米柱的倾斜角是VANs沉积过程中动力学和热力学平衡的定量度量。所有这些发现为理解VAN的形成机制及相关形态调控提供了有价值的信息。