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等离子体中介非共振等离子体增强超快激光诱导纳米空化。

Plasma mediated off-resonance plasmonic enhanced ultrafast laser-induced nanocavitation.

机构信息

Laser Processing and Plasmonics Laboratory, Engineering Physics Department, École Polytechnique de Montréal, Montréal, Québec H3C 3A7, Canada.

出版信息

Nano Lett. 2012 Sep 12;12(9):4763-9. doi: 10.1021/nl302200w. Epub 2012 Aug 7.

Abstract

The generation of nanobubbles around plasmonic nanostructures is an efficient approach for imaging and therapy, especially in the field of cancer research. We show a novel method using infrared femtosecond laser that generates ≈800 nm bubbles around off-resonance gold nanospheres using 200 mJ/cm(2) 45 fs pulses. We present experimental and theoretical work that demonstrate that the nanobubble formation results from the generation of a nanoscale plasma around the particle due to the enhanced near-field rather than from the heating of the particle. Energy absorbed in the nanoplasma is indeed more than 11 times the energy absorbed in the particle. When compared to the usual approach that uses nanosecond laser to induce the extreme heating of in-resonance nanoparticles to initiate bubble formation, our off-resonance femtosecond technique is shown to bring many advantages, including avoiding the particles fragmentation, working in the optical window of biological material and using the deposited energy more efficiently.

摘要

在等离子体纳米结构周围生成纳米气泡是一种用于成像和治疗的有效方法,特别是在癌症研究领域。我们展示了一种使用红外飞秒激光的新方法,该方法使用 200mJ/cm² 的 45fs 脉冲在离谐金纳米球周围产生 ≈800nm 的气泡。我们提出了实验和理论工作,证明纳米气泡的形成是由于颗粒周围的近场增强而产生纳米级等离子体,而不是由于颗粒的加热。在纳米等离子体中吸收的能量确实比在颗粒中吸收的能量多 11 倍。与通常使用纳秒激光来引发共振纳米粒子的极端加热以引发气泡形成的方法相比,我们的离谐飞秒技术具有许多优势,包括避免颗粒破碎、在生物材料的光学窗口中工作以及更有效地利用沉积能量。

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