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Laser synthesis of hybrid nanoparticles for biomedicine

机译:生物医学激光合成杂化纳米粒子

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The extraordinary properties of size-tunable nanoparticles (NPs) have given rise to their widespread applications in Nanophotonics, Biomedicine, Plasmonics etc. Semiconductor and metal NPs have found a number of significant applications in the modern biomedicine due to ultrasmall sizes (1-10 nm) and the size-dependent flexibility of their optical properties. In the present work passive Q-switched Nd:YAG pulsed laser was used to synthesize NPs by method of laser ablation in different liquids. For cases of hybrid metal NPs we have demonstrated that plasmon resonance can be modified and tuned from the plasmon resonances of pure metal NPs. The shifted plasmon resonance frequency at 437 nm for Au-Ag hybrid NPs, and 545 nm for Au-Cu hybrid NPs have been observed. Effectiveness of biotissue ablation in the case of the tissue sample that colored with metal NPs was approximately on 4-5 times larger than for the sample with non-colored area. Laser welding for deep-located biotissue layers colored by metal NPs has been realized. The luminescence properties of the colloidal hybrid Si-Ni nanoparticles' system fabricated by pulsed laser ablation are also considered. The red-shifted photoluminescence of this system has been registered in the blue range of the spectrum because of the Stark effect in the Coulomb field of the charged Ni nanoparticles. Summarizing, the knowledge of peculiarities of optical properties of hybrid NPs is very important for biomedical applications. More complex nanoassemblies can be easily constructed by the presented technique of laser synthesis of colloidal QDs including complexes of NPs of different materials.
机译:尺寸可调纳米粒子(NPS)的特殊性质引起了纳米剧学,生物医学,等离子体等中的广泛应用。半导体和金属NPS在现代化的生物医学中发现了由于超大尺寸(1-10nm )它们的光学性质的尺寸依赖性灵活性。在本工作中,无源Q切换Nd:YAG脉冲激光器用于通过不同液体激光消融方法合成NPS。对于杂种金属NPS的情况,我们已经证明可以从纯金属NP的等离子体共振来修改和调整等离子体共振。对于Au-Ag杂交NPS 437nm的偏移等离子体共振频率,并且已经观察到AU-Cu混合NPS的545nm。在用金属NPS着色的组织样品的情况下,生物发烧的有效性大约比具有非有色面积的样品的4-5倍。已经实现了由金属NPS上彩色的深层生物发布层的激光焊接。还考虑了由脉冲激光烧蚀制造的胶体杂交Si-Ni纳米颗粒的发光性能。由于带电的Ni纳米粒子的库仑场中的缺点效应,该系统的红色移位光致发光已经在光谱的蓝色范围内登记。总结,杂化NPS光学性质的特性知识对于生物医学应用非常重要。通过呈现的胶体QD的激光合成技术,可以容易地构建更复杂的纳米组件,包括不同材料的NPS的络合物。

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