Advanced Photonics Center, Southeast University, Nanjing, 210096, Jiangsu, China.
Advanced Photonics Center, Southeast University, Nanjing, 210096, Jiangsu, China.
Biosens Bioelectron. 2021 Jan 15;172:112769. doi: 10.1016/j.bios.2020.112769. Epub 2020 Oct 25.
Nanostructure with precisely controllable narrow gap width remains a great challenge, especially at the sub-nanoscale level. Here, a versatile strategy named as DNA-assisted synthesis of ortho-nanodimer (DaSON) is proposed to fabricate Ag (Au) nanodimers with a uniform gap width from nanometers to angstroms. In such a strategy, two nanoparticles are constrained by the equilibrium state of the DNA hybridization and electrostatic repulsion to form zipper-like ortho-nanostructures with an extremely uniform gap whose width can be finely adjusted at nanoscale or sub-nanoscale by changing the DNA sequence and the surface charge of nanoparticles. The inherent strong electromagnetic coupling in the uniform sub-nanometer gap can generates an unparalleled SERS enhancement together with an extraordinary reproducibility. Compared with conventional DNA-based nano-gap fabrication strategy, the DaSON strategy enhances the SERS intensity for more than two orders of magnitude with a detection limit of 100 aM for DNA, and significantly improves the reproducibility in both labeled and label-free SERS sensing applications. Moreover, the DaSON strategy holds wide applicability for arbitrary kinds of DNA-modifiable nanoparticles. Therefore, we believe that the DaSON strategy provides an innovative method for the synthesis of nanostructures with controllable nanogaps and has a promising future in multiple fields including nanotechnology, catalysis and photonics.
具有精确可控窄间隙宽度的纳米结构仍然是一个巨大的挑战,特别是在亚纳米尺度上。在这里,提出了一种名为 DNA 辅助合成邻位纳米二聚体 (DaSON) 的通用策略,用于制造具有从纳米到埃米均匀间隙宽度的 Ag(Au)纳米二聚体。在这种策略中,两个纳米颗粒通过 DNA 杂交和静电排斥的平衡状态被约束,以形成具有极均匀间隙的拉链状邻位纳米结构,其宽度可以通过改变 DNA 序列和纳米颗粒的表面电荷在纳米或亚纳米尺度上进行精细调节。在均匀的亚纳米间隙中固有的强电磁耦合可以产生无与伦比的 SERS 增强以及非凡的重现性。与传统的基于 DNA 的纳米间隙制造策略相比,DaSON 策略将 SERS 强度提高了两个数量级以上,对于 DNA 的检测限低至 100 aM,并且在标记和无标记 SERS 传感应用中显著提高了重现性。此外,DaSON 策略对任意种类的 DNA 可修饰纳米颗粒具有广泛的适用性。因此,我们相信 DaSON 策略为具有可控纳米间隙的纳米结构的合成提供了一种创新方法,在纳米技术、催化和光子学等多个领域具有广阔的应用前景。