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利用选择性激光熔化和脱合金化快速合成单分散金-银合金纳米海绵用于灵敏的近红外表面增强拉曼散射

Rapid synthesis of monodispersed Au-Ag alloy nanosponges using selective laser melting and dealloying for sensitive near-infrared surface-enhanced Raman scattering.

作者信息

Wen Hua, Hang Lifeng, Liang Lianbao, Li Wuming, Jiang Guihua

机构信息

The Department of Medical Imaging Guangdong Second Provincial General Hospital, Guangzhou, 518037, People's Republic of China.

出版信息

Nanotechnology. 2021 Oct 22;33(2). doi: 10.1088/1361-6528/ac2a82.

Abstract

We developed a rapid synthesis method for monodispersed Au-Ag alloy nanosponges (NSs) with high density of 'hotspots' for near-infrared surface enhanced Raman scattering (NIR-SERS) by a selective laser-irradiation melting and chemical dealloying process. Au@Ag core-shell nanocubes were firstconverted into solid alloyed Au-Ag nanospheres by a rapid laser irradiation igniting quick fusion and quenching process within two minutes. The alloyed Au-Ag nanospheres transformed into Au-Ag alloy NSs after treated by a chemical dealloying process. Different from traditional thermal annealing, it thus can effectively avoid the heat fusion between nanoparticles, and maintain the alloyed Au-Ag nanospheres and NSs in high monodispersity. Importantly, due to the strong plasmonic coupling in nanopores (pore size less than 10 nm), the obtained Au-Ag alloy NSs show a broad and intense localized surface plasmon resonances absorption ranging from visible to near-Infrared region (500-1200 nm). The accessibly open structures for absorbing targets and high-density of 'NIR-hotspots' endow the Au-Ag alloy NSs substrate with superior sensitivity in NIR-SERS detection of 4-aminothiophenol with an enhancement factor of ∼10. This work not only provides a simple pathway for rapid preparation of NIR-SERS substrate for biosensing, but also might open up a new horizon for fabricating spongy nanostructures with other elements.

摘要

我们通过选择性激光辐照熔化和化学脱合金化过程,开发了一种用于制备具有高密度“热点”的单分散金 - 银合金纳米海绵(NSs)的快速合成方法,用于近红外表面增强拉曼散射(NIR - SERS)。首先,通过快速激光辐照引发的快速熔化和淬火过程,在两分钟内将金@银核壳纳米立方体转化为固态合金化金 - 银纳米球。经过化学脱合金化处理后,合金化金 - 银纳米球转变为金 - 银合金NSs。与传统热退火不同,它能有效避免纳米颗粒之间的热熔合,并使合金化金 - 银纳米球和NSs保持高单分散性。重要的是,由于纳米孔(孔径小于10 nm)中强烈的等离子体耦合,所获得的金 - 银合金NSs在可见光到近红外区域(500 - 1200 nm)表现出宽而强的局域表面等离子体共振吸收。易于接近的开放结构用于吸收目标以及高密度的“近红外热点”,赋予金 - 银合金NSs基底在检测4 - 氨基硫酚的近红外SERS中具有卓越的灵敏度,增强因子约为10。这项工作不仅为生物传感的近红外SERS基底的快速制备提供了一条简单途径,而且可能为制造含有其他元素的海绵状纳米结构开辟新的视野。

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