National Center for Nanoscience and Technology, Beijing 100190, China.
J Am Chem Soc. 2012 Jan 11;134(1):146-9. doi: 10.1021/ja209861x. Epub 2011 Dec 13.
Construction of three-dimensional (3D) plasmonic architectures using structural DNA nanotechnology is an emerging multidisciplinary area of research. This technology excels in controlling spatial addressability at sub-10 nm resolution, which has thus far been beyond the reach of traditional top-down techniques. In this paper, we demonstrate the realization of 3D plasmonic chiral nanostructures through programmable transformation of gold nanoparticle (AuNP)-dressed DNA origami. AuNPs were assembled along two linear chains on a two-dimensional rectangular DNA origami sheet with well-controlled positions and particle spacing. By rational rolling of the 2D origami template, the AuNPs can be automatically arranged in a helical geometry, suggesting the possibility of achieving engineerable chiral nanomaterials in the visible range.
利用结构 DNA 纳米技术构建三维(3D)等离子体结构是一个新兴的多学科研究领域。该技术在控制亚 10nm 分辨率的空间可寻址性方面表现出色,这是传统自上而下技术迄今为止无法企及的。在本文中,我们通过可编程转换金纳米粒子(AuNP)修饰的 DNA 折纸,实现了 3D 等离子体手性纳米结构的构建。AuNPs 沿着二维矩形 DNA 折纸片上的两条线性链组装,位置和颗粒间距得到很好的控制。通过对二维折纸模板的合理滚压,AuNPs 可以自动排列成螺旋几何形状,这表明在可见光范围内实现可设计的手性纳米材料是有可能的。