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精确调控金纳米棒纵向局域表面等离子体共振的添加剂调控过生长。

Precisely tuning the longitudinal localized surface plasmon resonance of gold nanorods additive-regulated overgrowth.

作者信息

Wang Suyan, Lin Qinlu, Xu Weizhen, An Qingxiao, Zhou Rongju, Yu Cheng-Ju, Xu Dong, Yuan Zhiqin

机构信息

National Engineering Laboratory for Rice and By-products Further Processing, Central South University of Forestry &Technology Changsha 410004 China

Department of Applied Physics and Chemistry, University of Taipei Taipei 10048 Republic of China.

出版信息

RSC Adv. 2020 Mar 27;10(21):12619-12625. doi: 10.1039/d0ra00579g. eCollection 2020 Mar 24.

Abstract

Gold nanorods (GNRs) with desired longitudinal localized surface plasmon resonance (LLSPR) and strong scattering intensity are important for extending their practical applications in bioimaging and sensing. Herein, a simple additive (HCl and NaS)-regulated overgrowth approach has been proposed for preparing GNRs with tunable LLSPR. In this approach, HCl is used to slow down the growth reaction rate by changing chemical equilibrium, while NaS is utilized to halt the reaction when LLSPR is reaching the expected wavelength under monitoring by a UV-Vis spectrometer. Under optimal conditions, GNRs with an LLSPR range from 850 to 650 nm could be facilely prepared with a high precision of 3 nm deviation. The TEM images reveal that GNRs have high monodispersity, displaying an increase in both length and diameter but a decrease in the aspect ratio. With the increase in size, the produced GNRs show enhanced scattering intensity and are applicable for single nanoparticle imaging due to the enlarged absorption and scattering cross-section and improved matching efficiency toward the CCD response.

摘要

具有所需纵向局域表面等离子体共振(LLSPR)和强散射强度的金纳米棒(GNRs)对于扩展其在生物成像和传感中的实际应用非常重要。在此,提出了一种简单的添加剂(HCl和NaS)调节过生长方法来制备具有可调谐LLSPR的GNRs。在这种方法中,HCl用于通过改变化学平衡来减缓生长反应速率,而当LLSPR在紫外可见光谱仪监测下达到预期波长时,NaS用于终止反应。在最佳条件下,可以轻松制备出LLSPR范围为850至650 nm的GNRs,偏差精度高达3 nm。透射电子显微镜(TEM)图像显示,GNRs具有高单分散性,长度和直径均增加,但纵横比降低。随着尺寸的增加,所制备的GNRs显示出增强的散射强度,并且由于吸收和散射横截面的增大以及对电荷耦合器件(CCD)响应的匹配效率提高,适用于单个纳米颗粒成像。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f438/9051167/781690102a25/d0ra00579g-s1.jpg

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