预测和探测等离子体核心外纳米粒子周围的局部温度升高,以研究热激活过程
Johannes C J Mertens1, Benjamin Spitzbarth1, Rienk Eelkema1
1Department of Chemical Engineering, Delft University of Technology, Van der Maasweg 9, 2629 HZ, Delft, The, Netherlands.
ChemPlusChem
|May 28, 2024
概括
使用金纳米颗粒的超快速光谱能够研究快速的热过程. 实验证实,聚合物键在几秒钟内断裂,开辟了新的研究途径.
科学领域:
- 物理化学 物理化学
- 材料科学 材料科学 材料科学
- 频谱学是一种光谱学.
背景情况:
- 超快速光谱学通常研究的光诱导过程在femtosecond到纳米秒的时间尺度.
- 热激活的过程,如催化反应和相变,很难在这些时间尺度上进行研究.
- 黄金纳米粒子为研究热过程提供诱导快速温度上升的潜力.
研究的目的:
- 以计算方式建模金纳米颗粒的温度概况,有或没有二氧化.
- 研究金纳米颗粒在研究超快热激活过程中的潜力.
- 通过实验验证快速加热和随后的分子动力学.
主要方法:
- 在液体和气体介质中的金纳米颗粒 (有/没有二氧化外) 的时间和空间温度概况的计算建模.
- 实验验证使用聚氨尿素与温度依赖的联网.
- 超快速光谱检测温度变化和键动态.
主要成果:
- 五秒激光脉冲诱导金纳米颗粒在几十个皮秒内快速升温.
- 计算模型预测裸体和状金纳米颗粒的快速温度增加.
- 实验结果显示,局部温度超过90°C,聚合物中的键在皮秒时间尺度上断裂.
结论:
- 金纳米粒子可以有效地产生超快的温度升高,适合研究热激活过程.
- 开发的方法允许研究动态过程,如聚合物键断裂在皮秒时间尺度上.
- 这种方法将超快光谱的应用扩展到更广泛的化学和物理现象.
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