Key Laboratory of Artificial Micro/Nano Structure of Ministry of Education, School of Physics and Technology, Wuhan University, Wuhan, 430072, China.
Nat Commun. 2023 Mar 14;14(1):1422. doi: 10.1038/s41467-023-37048-0.
Chirality is pivotal in nature which attracts wide research interests from all disciplines and creating chiral matter is one of the central themes for chemists and material scientists. Despite of significant efforts, a simple, cost-effective and general method that can produce different kinds of chiral metamaterials with high regularity and tailorability is still demanding but greatly missing. Here, we introduce polarization-directed growth of spiral nanostructures via vector beams, which is simple, tailorable and generally applicable to both plasmonic and dielectric materials. The self-aligned near field enhances the photochemical growth along the polarization, which is crucial for the oriented growth. The obtained plasmonic chiral nanostructures present prominent optical activity with a g-factor up to 0.4, which can be tuned by adjusting the spirality of the vector beams. These spiral plasmonic nanostructures can be used for the sensing of different chiral enantiomers. The dielectric chiral metasurfaces can also be formed in arrays of sub-mm scale, which exhibit a g-factor over 0.1. However, photoluminescence of chiral cadmium sulfide presents a very weak luminescence g-factor with the excitation of linearly polarized light. A number of applications can be envisioned with these chiral nanostructures such as chiral sensing, chiral separation and chiral information storage.
手性在自然界中至关重要,吸引了来自各个学科的广泛研究兴趣,创造手性物质是化学家们和材料科学家们的核心主题之一。尽管已经付出了巨大的努力,但仍然需要一种简单、经济高效且通用的方法,可以生产具有高规整性和可定制性的各种手性超材料,而这种方法却严重缺失。在这里,我们通过矢量光束介绍了螺旋纳米结构的偏振定向生长,这种方法简单、可定制,并且通常适用于等离子体和介电材料。自对准近场增强了沿偏振方向的光化学反应,这对于定向生长至关重要。所获得的等离子体手性纳米结构具有明显的旋光活性,g 因子高达 0.4,可以通过调整矢量光束的螺旋度来调节。这些螺旋等离子体纳米结构可用于不同手性对映体的传感。介电手性超表面也可以形成亚毫米级的阵列,其 g 因子超过 0.1。然而,手性硫化镉的光致发光在线偏振光激发下表现出非常弱的发光 g 因子。这些手性纳米结构可以应用于手性传感、手性分离和手性信息存储等领域。