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Evolution of light-induced vapor generation at a liquid-immersed metallic nanoparticle

机译:液体浸没的金属纳米粒子的光诱导蒸气生成的演变

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摘要

When an Au nanoparticle in a liquid medium is illuminated with resonant light of sufficient intensity, a nanometer scale envelope of vapor -a “nanobubble”- surrounding the particle, is formed. This is the nanoscale onset of the well-known process of liquid boiling, occurring at a single nanoparticle nucleation site, resulting from the photothermal response of the nanoparticle. Here we examine bubble formation at an individual metallic nanoparticle in detail. Incipient nanobubble formation is observed by monitoring the plasmon resonance shift of an individual, illuminated Au nanoparticle, when its local environment changes from liquid to vapor. The temperature on the nanoparticle surface is monitored during this process, where a dramatic temperature jump is observed as the nanoscale vapor layer thermally decouples the nanoparticle from the surrounding liquid. By increasing the intensity of the incident light or decreasing the interparticle separation, we observe the formation of micron sized bubbles resulting from the coalescence of nanoparticle-“bound” vapor envelopes. These studies provide the first direct and quantitative analysis of the evolution of light-induced steam generation by nanoparticles from the nanoscale to the macroscale, a process that is of fundamental interest for a growing number of applications.
机译:当液体介质中的Au纳米粒子被足够强度的共振光照射时,就会形成纳米级的包裹着粒子的蒸气-“纳米气泡”-。这是众所周知的液体沸腾过程的纳米级发作,其发生在单个纳米颗粒成核位置,这是由于纳米颗粒的光热响应所致。在这里,我们详细检查了单个金属纳米粒子的气泡形成。当纳米金的局部环境从液体变为蒸气时,可以通过监测单个被照亮的金纳米粒子的等离子体共振位移来观察到纳米气泡的初期形成。在该过程中监测纳米颗粒表面上的温度,其中观察到剧烈的温度跃迁,因为纳米级蒸汽层将纳米颗粒与周围的液体热分离。通过增加入射光的强度或减小颗粒间的分离,我们观察到由于纳米颗粒“结合”的蒸汽包膜的聚结而形成的微米级气泡。这些研究首次对纳米颗粒从纳米尺度到宏观尺度的光诱导蒸汽产生的演化进行了直接和定量的分析,这一过程对于越来越多的应用具有根本的意义。

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