Department of Chemistry, University of Louisville, Louisville, Kentucky 40292, USA.
Department of Chemical Engineering, University of Louisville, Louisville, Kentucky 40292, USA.
Phys Chem Chem Phys. 2021 Nov 17;23(44):25256-25263. doi: 10.1039/d1cp03684j.
Colloidal crystallization using DNA provides a robust method for fabricating highly programmable nanoparticle superstructures with collective plasmonic properties. Here, we report on the DNA-guided fabrication of 3D plasmonic aggregates from polydisperse gold nanoprisms. We first construct 1D crystals DNA-induced and shape-directed face-to-face assembly of anisotropic gold nanoprisms. Using the near- thermal annealing approach that promotes long-range DNA-induced interaction and ordering, we then assemble 1D nanoprism crystals into a 3D nanoprism aggregate that exhibits a polycrystalline morphology with nanoscale ordering and microscale dimensions. The presence of closely packed nanoprism arrays over a large area gives rise to strong near-field plasmonic coupling and generates a high density of plasmonic hot spots within the 3D nanoprism aggregates that exhibit excellent surface-enhanced Raman scattering performance. The plasmonic 3D nanoprism aggregates demonstrate significant SERS enhancement (<10), and low detection limits (10M) with good sample-to-sample reproducibility (CV ∼ only 5.6%) for SERS analysis of the probe molecule, methylene blue. These findings highlight the potential of 3D anisotropic nanoparticle aggregates as functional plasmonic nanoarchitectures that could find applications in sensing, photonics, optoelectronics and lasing.
利用 DNA 进行胶态结晶为制造具有集体等离子体特性的高度可编程的纳米粒子超结构提供了一种强大的方法。在这里,我们报告了通过 DNA 引导从多分散金球体制备 3D 等离子体聚集体。我们首先构建了一维晶体,即通过 DNA 诱导和形状导向的各向异性金球的面对面组装。然后,我们使用近热退火方法促进长程 DNA 诱导的相互作用和有序化,将一维纳米棒晶体组装成 3D 纳米棒聚集体,该聚集体具有纳米级有序和微米级尺寸的多晶形态。在大面积上紧密堆积的纳米棒阵列的存在导致强近场等离子体耦合,并在 3D 纳米棒聚集体内产生等离子体热点的高密度,表现出优异的表面增强拉曼散射性能。等离子体 3D 纳米棒聚集体表现出显著的 SERS 增强(<10)和低检测限(10M),对于探针分子亚甲基蓝的 SERS 分析具有良好的样品间重现性(CV 仅约为 5.6%)。这些发现突出了 3D 各向异性纳米颗粒聚集体作为功能等离子体纳米结构的潜力,这些结构可在传感、光子学、光电学和激光等领域得到应用。