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Photothermal Effectiveness of Magnetite Nanoparticles: Dependence upon Particle Size Probed by Experiment and Simulation

机译:磁铁矿纳米粒子的光热效率:取决于实验和模拟探测的粒径。

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摘要

The photothermal effect of nanoparticles has proven efficient for driving diverse physical and chemical processes; however, we know of no study addressing the dependence of efficacy on nanoparticle size. Herein, we report on the photothermal effect of three different sizes (5.5 nm, 10 nm and 15 nm in diameter) of magnetite nanoparticles (MNP) driving the decomposition of poly(propylene carbonate) (PPC). We find that the chemical effectiveness of the photothermal effect is positively correlated with particle volume. Numerical simulations of the photothermal heating of PPC supports this observation, showing that larger particles are able to heat larger volumes of PPC for longer periods of time. The increased heating duration is likely due to increased heat capacity, which is why the volume of the particle functions as a ready guide for the photothermal efficacy.
机译:纳米粒子的光热效应已被证明可以有效地驱动各种物理和化学过程。然而,我们还没有研究解决功效对纳米颗粒大小的依赖性。在此,我们报告了三种不同大小(直径分别为5.5 nm,10 nm和15 nm)的磁铁矿纳米粒子(MNP)的光热效应,该效应驱动了聚碳酸亚丙酯(PPC)的分解。我们发现光热效应的化学有效性与颗粒体积成正相关。 PPC光热加热的数值模拟支持了这一观察结果,表明较大的颗粒能够在更长的时间内加热较大体积的PPC。增加的加热时间可能是由于增加的热容量,这就是为什么颗粒的体积可以作为光热功效的有效指南。

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