首页> 外文期刊>Physical chemistry chemical physics: PCCP >Pulsed laser induced heat transfer from a phthalocyanine-based thin film to a Bi, Al-substituted DyIG substrate: photothermal demagnetization observed by magnetic circular dichroism and numerical analysis
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Pulsed laser induced heat transfer from a phthalocyanine-based thin film to a Bi, Al-substituted DyIG substrate: photothermal demagnetization observed by magnetic circular dichroism and numerical analysis

机译:脉冲激光诱导从酞菁基薄膜的热传递到Bi,Al取代的染料底物:通过磁性圆形二色性和数值分析观察到光热的去磁

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摘要

We have investigated the demagnetization of a ferrimagnetic substrate, Bi, Al-substituted dysprosium iron garnet (Bi0.8Dy2.2Fe4.3 Al0.7O12), based on selective puked laser irradiation of a molecular thin film consisting of mu-oxo-bis[hydroxyl{2,9(or 10),16(or 17),23(or 24)-tetra-tert-butylphthalocyanato}silicon] ((SiPc)(2)) and poly(vinylidene fluoride), and succeeded in reproducing photothermal energy transfer from a molecular thin film to an inorganic magnetic substrate in a submicrometer-order and a submicrosecond time scale using numerical analysis. After the instant temperature rise due to nanosecond puked laser irradiation of the (SiPc)(2)-based film, followed by heat transfer from the film to the neighboring magnetic substrate, demagnetization of the magnetic substrate was spectroscopically monitored by the decrease in its magnetic circular dichroism (MCD) intensity. The MCD intensity decreased with increasing puked laser energy, which reflects the fact that the submicrometer-order region of the substrate was demagnetized as a result of temperature rise reaching high Curie temperature. This heat transfer phenomenon resulting in the demagnetization of the magnetic substrate was numerically analyzed in a submicrometer-order and a submicrosecond time scale using the finite difference method: the demagnetized regions were calculated to be the same order of magnitude as those experimentally evaluated. These results would provide a more detailed understanding of photothermal energy transfer in organic-inorganic hybrid materials, which would be useful for developing photofunctional materials.
机译:我们研究了基于由Mu-Oxo-BIS组成的分子薄膜的选择性Puked激光照射(Bi0.8dy2.2Fe4.3 Al0.7O12)的铁磁性底物,Bi,Al取代的镝铁石榴石的去磁化羟基{2,9(或10),16(或17),23(或24) - 叔丁苯酞硅硅酸硅]((SIPC)(2))和聚(偏二氟乙烯),并成功再现光热使用数值分析,从分子薄膜从分子薄膜到无机磁衬底的电型磁性基板转移。由于纳秒抛光的瞬间升温(2)被基于(2)的薄膜,然后从膜传热到相邻的磁衬底,通过其磁性的降低光谱监测磁性基板的退缩。圆形二中间(MCD)强度。随着Puked激光能量的增加,MCD强度降低,这反映了由于达到高居里温度的温度升高而被淘汰基板的亚微米级阶区域。这导致在磁性基板的退磁传热现象数值分析在亚微米级,并使用有限差分方法的亚微秒时间尺度:计算了消磁区域是相同的数量级顺序的那些实验评价。这些结果将提供更详细的了解有机无机杂化材料中的光热能量转移,这对于开发光共官能材料是有用的。

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