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Gold nanoshell photomodification under a single-nanosecond laser pulse accompanied by color-shifting and bubble formation phenomena

机译:金纳米壳在单纳秒激光脉冲下的光变质并伴有色移和气泡形成现象

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摘要

Laser-nanoparticle interaction is crucial for biomedical applications of lasers and nanotechnology to the treatment of cancer or pathogenic microorganisms. We report on the first observation of laser-induced coloring of gold nanoshell solution after a one nanosecond pulse and an unprecedentedly low bubble formation (as the main mechanism of cancer cell killing) threshold at a laser fluence of about 4 mJ cm(-2), which is safe for normal tissue. Specifically, silica/gold nanoshell (140/15 nm) suspensions were irradiated with a single 4 ns (1064 nm) or 8 ns (900 nm) laser pulse at fluences ranging from 0.1 mJ cm(-2) to 50 J cm(-2). Solution red coloring was observed by the naked eye confirmed by blue-shifting of the absorption spectrum maximum from the initial 900 nm for nanoshells to 530 nm for conventional colloidal gold nanospheres. TEM images revealed significant photomodification of nanoparticles including complete fragmentation of gold shells, changes in silica core structure, formation of small 20-30 nm isolated spherical gold nanoparticles, gold nanoshells with central holes, and large and small spherical gold particles attached to a silica core. The time-resolved monitoring of bubble formation phenomena with the photothermal (PT) thermolens technique demonstrated that after application of a single 8 ns pulse at fluences 5-10 mJ cm(-2) and higher the next pulse did not produce any PT response, indicating a dramatic decrease in absorption because of gold shell modification. We also observed a dependence of the bubble expansion time on the laser energy with unusually very fast PT signal rising (similar to 3.5 ns scale at 0.2 J cm(-2)). Application of the observed phenomena to medical applications is discussed, including a simple visual color test for laser-nanoparticle interaction.
机译:激光-纳米粒子的相互作用对于激光和纳米技术在癌症或病原微生物治疗中的生物医学应用至关重要。我们报告了一个纳秒脉冲和在约4 mJ cm(-2)的激光注量下空前的低气泡形成(作为癌细胞杀死的主要机制)阈值之后,激光诱导的金纳米壳溶液着色的首次观察结果。对正常组织是安全的。具体来说,用0.1毫焦厘米(-2)到50焦厘米(-)范围内的单个4 ns(1064 nm)或8 ns(900 nm)激光脉冲辐照二氧化硅/金纳米壳(140/15 nm)悬浮液。 2)。肉眼观察到溶液呈红色,通过最大吸收光谱的蓝移从纳米壳的初始900 nm转变为常规胶体金纳米球的530 nm确认。 TEM图像显示了纳米粒子的显着光改性,包括金壳的完全碎裂,二氧化硅核结构的变化,形成的20-30 nm小的球形金纳米颗粒,带有中心孔的金纳米壳以及附着在二氧化硅核上的大小球形金颗粒。 。用光热(PT)热透镜技术对气泡形成现象的时间分辨监测表明,在以5-10 mJ cm(-2)或更高的注量施加单个8 ns脉冲后,下一个脉冲不会产生任何PT响应,表示由于金壳修饰,吸收率急剧下降。我们还观察到气泡膨胀时间对激光能量的依赖性,而PT信号的上升速度非常快(类似于在0.2 J cm(-2)时的3.5 ns标度)。讨论了观察到的现象在医疗应用中的应用,包括用于激光-纳米粒子相互作用的简单视觉颜色测试。

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