超临界二氧化碳激光烧蚀过程中亚微米金颗粒形成动力学

IF 1.4 4区 化学 Q4 PHYSICS, ATOMIC, MOLECULAR & CHEMICAL
E. O. Epifanov, N. M. Asharchuk, D. N. Khmelenin, I. V. Trofimov, A. O. Rybaltovsky, G. V. Mishakov, T. A. Semenov, N. V. Minaev, E. I. Mareev
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引用次数: 0

摘要

利用时间分辨Mie散射吸收光谱技术研究了超临界和液态CO2激光烧蚀过程中亚微米金颗粒形成的动力学。结果表明,当CO2浓度达到800 kg/m3左右时,在10 ~ 1000 μs的时间尺度上产生激光诱导的介质波动,在此期间会产生后续激光脉冲的散焦。在Widom区附近流体密度降低的条件下(P = 8.5 МРa, T = 310 K),纳米颗粒可以不受阻碍地离开相互作用区,积分吸收呈指数增长。吸收光谱数据允许观察纳米颗粒形成动力学,其平均直径约为160 nm,其尺寸分布为对数正态分布,其宽度由CO2的热力学条件决定。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Dynamics of Submicron Gold Particle Formation during Laser Ablation in Supercritical Carbon Dioxide

Dynamics of Submicron Gold Particle Formation during Laser Ablation in Supercritical Carbon Dioxide

The dynamics of submicron gold particle formation during laser ablation in supercritical and liquid CO2 are investigated using time-resolved Mie scattering absorption spectroscopy. It is found that a high density of CO2 of approximately 800 kg/m3, regardless of the phase state, leads to the formation of laser-induced medium fluctuations on time scales of 10 to 1000 μs, during which the defocusing of subsequent laser pulses may occur. Under conditions of the reduced fluid density in the vicinity of the Widom region (P = 8.5 МРa, T = 310 K), it is demonstrated that nanoparticles can leave the interaction zone unhindered as evidenced by the exponential increase in integral absorption. Data from the absorption spectra allow the observation of the nanoparticle formation dynamics with an average diameter of approximately 160 nm and a log-normal size distribution, the width of which is determined by the thermodynamic conditions of CO2.

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来源期刊
Russian Journal of Physical Chemistry B
Russian Journal of Physical Chemistry B 化学-物理:原子、分子和化学物理
CiteScore
2.20
自引率
71.40%
发文量
106
审稿时长
4-8 weeks
期刊介绍: Russian Journal of Physical Chemistry B: Focus on Physics is a journal that publishes studies in the following areas: elementary physical and chemical processes; structure of chemical compounds, reactivity, effect of external field and environment on chemical transformations; molecular dynamics and molecular organization; dynamics and kinetics of photoand radiation-induced processes; mechanism of chemical reactions in gas and condensed phases and at interfaces; chain and thermal processes of ignition, combustion and detonation in gases, two-phase and condensed systems; shock waves; new physical methods of examining chemical reactions; and biological processes in chemical physics.
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