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Extreme temperature stability of thermally insulating graphene-mesoporous-silicon nanocomposite

机译:热绝缘石墨烯 - 中孔硅纳米复合材料的极端温度稳定性

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We demonstrate the thermal stability and thermal insulation of graphene-mesoporous-silicon nanocomposites (GPSNC). By comparing the morphology of GPSNC carbonized at 650 degrees C as formed to that after annealing, we show that this nanocomposite remains stable at temperatures as high as 1050 degrees C due to the presence of a few monolayers of graphene coating on the pore walls. This does not only make this material compatible with most thermal processes but also suggests applications in harsh high temperature environments. The thermal conductivity of GPSNCs carbonized at temperatures in the 500 degrees C-800 degrees C range is determined through Raman spectroscopy measurements. They indicate that the thermal conductivity of the composite is lower than that of silicon, with a value of 13 +/- 1WmK(-1) at room temperature, and not affected by the thin graphene layer, suggesting a role of the high concentration of carbon related-defects as indicated by the high intensity of the D-band compared to G-band of the Raman spectra. This morphological stability at high temperature combined with a high thermal insulation make GPSNC a promising candidate for a broad range of applications including microelectromechanical systems and thermal effect microsystems such as flow sensors or IR detectors. Finally, at 120 degrees C, the thermal conductivity remains equal to that at room temperature, attesting to the potential of using our nanocomposite in devices that operate at high temperatures such as microreactors for distributed chemical conversion, solid oxide fuel cells, thermoelectric devices or thermal micromotors.
机译:我们证明了石墨烯 - 中孔 - 硅纳米复合材料(GPSNC)的热稳定性和隔热性。通过将650℃的GPSNC的形态进行比较,如退火后形成的,表明该纳米复合材料在高达1050℃的温度下保持稳定,导致孔壁上的几种石墨烯涂层存在。这不仅使这种材料与大多数热过程兼容,而且还提出了在恶劣的高温环境中的应用。通过拉曼光谱测量确定在500℃-800℃范围内的温度下碳化的GPSNC的热导率。它们表明,复合材料的导热率低于硅的热导率,室温下具有13 +/- 1WMK(-1)的值,并且不受薄石墨烯层的影响,表明高浓度的作用与拉曼光谱的G波段相比,如D频带的高强度所示的碳相关缺陷。这种形态稳定在高温下与高热绝缘相结合,使GPSNC成为广泛应用的有希望的候选者,包括微机电系统和热效应微系统,例如流量传感器或IR探测器。最后,在120摄氏度下,导热率保持等于在室温下,证明在在高温下使用我们的纳米复合材料的电位在诸如分布式化学转化,固体氧化物燃料电池,热电装置或热量的微量反应器的装置中操作微电机。

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