Department of Physics, Nanoscience Center, P.O. Box 35, 40014 University of Jyväskylä, Finland.
Biohybrid Materials, Department of Bioproducts and Biosystems, Aalto University, 00076 Aalto, Finland.
Sci Adv. 2018 Feb 2;4(2):eaap8978. doi: 10.1126/sciadv.aap8978. eCollection 2018 Feb.
Programmable self-assembly of nucleic acids enables the fabrication of custom, precise objects with nanoscale dimensions. These structures can be further harnessed as templates to build novel materials such as metallic nanostructures, which are widely used and explored because of their unique optical properties and their potency to serve as components of novel metamaterials. However, approaches to transfer the spatial information of DNA constructions to metal nanostructures remain a challenge. We report a DNA-assisted lithography (DALI) method that combines the structural versatility of DNA origami with conventional lithography techniques to create discrete, well-defined, and entirely metallic nanostructures with designed plasmonic properties. DALI is a parallel, high-throughput fabrication method compatible with transparent substrates, thus providing an additional advantage for optical measurements, and yields structures with a feature size of ~10 nm. We demonstrate its feasibility by producing metal nanostructures with a chiral plasmonic response and bowtie-shaped nanoantennas for surface-enhanced Raman spectroscopy. We envisage that DALI can be generalized to large substrates, which would subsequently enable scale-up production of diverse metallic nanostructures with tailored plasmonic features.
可编程的核酸自组装使定制、精确的纳米级尺寸的物体的制造成为可能。这些结构可以进一步用作模板来构建新型材料,如金属纳米结构,由于其独特的光学性质及其作为新型超材料组成部分的潜力,这些材料得到了广泛的应用和探索。然而,将 DNA 结构的空间信息转移到金属纳米结构的方法仍然是一个挑战。我们报告了一种 DNA 辅助光刻(DALI)方法,该方法将 DNA 折纸的结构多功能性与传统光刻技术相结合,以创建具有设计等离子体特性的离散、明确定义且完全金属的纳米结构。DALI 是一种与透明衬底兼容的平行、高通量制造方法,因此为光学测量提供了额外的优势,并产生了具有约 10nm 特征尺寸的结构。我们通过制造具有手性等离子体响应和用于表面增强拉曼光谱的蝴蝶结形状纳米天线的金属纳米结构来证明其可行性。我们设想 DALI 可以推广到更大的衬底上,从而随后能够大规模生产具有定制等离子体特征的各种金属纳米结构。