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定制自组装金纳米粒子-DNA 折纸复合模板用于导向等离子体结构的形状生长。

Customized Self-Assembled Gold Nanoparticle-DNA Origami Composite Templates for Shape-Directed Growth of Plasmonic Structures.

机构信息

Key Laboratory for Organic Electronics and Information Displays (KLOEID) & Jiangsu Key Laboratory for Biosensors, Institute of Advanced Materials (IAM), National Synergetic Innovation Center for Advanced Materials (SICAM), Nanjing University of Posts and Telecommunications, 9 Wenyuan Road, Nanjing 210023, China.

出版信息

Nano Lett. 2024 Jun 5;24(22):6480-6487. doi: 10.1021/acs.nanolett.4c00504. Epub 2024 May 21.

Abstract

The metal plasmonic nanostructure has the optical property of plasmon resonance, which holds great potential for development in nanophotonics, bioelectronics, and molecular detection. However, developing a general and straightforward method to prepare metal plasmonic nanostructures with a controllable size and morphology still poses a challenge. Herein, we proposed a synthesis strategy that utilized a customizable self-assembly template for shape-directed growth of metal structures. We employed gold nanoparticles (AuNPs) as connectors and DNA nanotubes as branches, customizing gold nanoparticle-DNA origami composite nanostructures with different branches by adjusting the assembly ratio between the connectors and branches. Subsequently, various morphologies of plasmonic metal nanostructures were created using this template shape guided strategy, which exhibited enhancement of surface-enhanced Raman scattering (SERS) signals. This strategy provides a new approach for synthesizing metallic nanostructures with multiple morphologies and opens up another possibility for the development of customizable metallic plasmonic structures with broader applications.

摘要

金属等离子体纳米结构具有等离子体共振的光学特性,在纳米光子学、生物电子学和分子检测等领域具有广阔的发展前景。然而,开发一种通用且简单的方法来制备具有可控尺寸和形态的金属等离子体纳米结构仍然具有挑战性。在此,我们提出了一种利用可定制的自组装模板来实现金属结构的形状导向生长的合成策略。我们采用金纳米粒子(AuNPs)作为连接物,DNA 纳米管作为支链,通过调整连接物和支链之间的组装比例,定制具有不同支链的金纳米粒子-DNA 折纸复合纳米结构。随后,我们利用这种模板形状导向策略,通过该模板合成了具有不同形貌的等离子体金属纳米结构,显示出表面增强拉曼散射(SERS)信号的增强。该策略为合成具有多种形貌的金属纳米结构提供了一种新方法,为具有更广泛应用的可定制金属等离子体结构的发展开辟了另一种可能。

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