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Development of near infrared responsive material based on silica encapsulated gold nanoparticles

机译:基于二氧化硅封装金纳米粒子的近红外响应材料的研制

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In this research, the silica encapsulated gold nanoparticles with optical resonance located in 700850 nm spectral region were synthesized by combining gold core and the silica shell. The synthesized composite particles can be potentially used in biological fields, due to the biocompatibility of gold, silica and biopolymers. Nano-gold, which can act a raw material of composite particles, was fabricated by stand citrate reduction method. Then, the polyvinyl pyrrolidone (PVP) and (3mercaptopropyl)trimethoxysilane (MPTMS) are added to deposit silica shell and control particle size. Finally, a complete silica nanoshell was formed on the gold surface by the one-step method, without a repeated coating process. The controllable absorption wavelength of nano-composite particles can be easily controlled by the concentration ratio of PVP and MPTMS. Transmission electron microscopy (TEM) images and optical absorption spectra clearly showed that silica was successfully deposited onto the gold surface by this novel method. As the decreasing aggregation of gold core by adding PVP, the optical plasmon peaks became blue-shifted, but the optical plasmon resonance became red-shifted and the absorption spectra were functions of addition ratios by MPTMS. We expect to extend these functional nanoparticles for real sample applications in the near future.
机译:在该研究中,通过组合金芯和二氧化硅壳,合成了具有位于700850nm光谱区域中的光学谐振的二氧化硅封装的金纳米颗粒。由于金,二氧化硅和生物聚合物的生物相容性,合成的复合颗粒可能在生物领域中使用。通过支架柠檬酸盐还原法制造了可作用复合颗粒原料的纳米金。然后,加入聚乙烯吡咯烷酮(PVP)和(3丙烯丙基)三甲氧基硅烷(MPTMS)以沉积二氧化硅壳和对照粒径。最后,通过一步法在金表面上形成完全二氧化硅纳米壳,而无需重复的涂布方法。可以通过PVP和MPTM的浓度比容易地控制纳米复合颗粒的可控吸收波长。透射电子显微镜(TEM)图像和光学吸收光谱清楚地表明,通过这种新方法成功地将二氧化硅成功沉积到金表面上。由于通过加入PVP来减小金芯的聚集,光学等离子体峰变为蓝移,但光学等离子体共振变为红移,并且通过MPTMS的吸收光谱是添加率的功能。我们希望在不久的将来扩展这些功能纳米颗粒以进行真实样本应用。

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