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Thermal conductivity of sintered nanodiamonds and microdiamonds

机译:烧结纳米金刚石和微金刚石的热导率

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We studied the sintering mechanisms and thermal conductivity of composites based on well purified detonation nanodiamonds (ND) prepared by Dr. Aleksenskii A.E. The thermal and electrical conductivities of composites from natural diamonds of 10-14 mu m in size were also examined. Both types of composites were sintered at high pressures (5.0-7.0 GPa) and high temperatures (1200-2300 deg C) for 10-25 s. It was found that the thermal conductivity of composites from natural diamonds increased as the sintering temperature approached the diamond-graphite equilibrium in the pressure range of 4.5-6.5 GPa because of the interdiffusion of the diamond particles. Above the phase equilibrium temperature, the thermal conductivity was observed to decrease due to the sample bulk graphitization. The maximum value of this parameter for the ND samples was observed at approximately 1900 deg C. Higher temperatures caused sample damage at lowered pressures, which seems to be due to the ND transition to the nondiamond carbon phase possessing a lower density. When we added 5 wt. percent of C_(60) fullerene to the initial ND, the diamond transition to a nondiamond carbon-like state occurred at a temperature below 1400 deg C and the thermal conductivity increased from 50 to 100 W/(m-K). Thermal conductivity was found to be about 50 W/(m centre dot K) for the ND samples and about 500 W/(m centre dot K) for the microdiamonds.
机译:我们研究了基于Aleksenskii A.E博士制备的高纯度爆轰纳米金刚石(ND)的复合材料的烧结机理和热导率。还研究了尺寸为10-14微米的天然金刚石的复合材料的导热性和导电性。将两种类型的复合材料在高压(5.0-7.0 GPa)和高温(1200-2300℃)下烧结10-25 s。已经发现,由于金刚石颗粒的相互扩散,在4.5-6.5GPa的压力范围内,随着烧结温度接近金刚石-石墨平衡,天然金刚石的复合材料的热导率增加。在相平衡温度以上,由于样品大量石墨化,观察到热导率降低。在大约1900℃观察到ND样品的该参数最大值。较高的温度在较低的压力下会导致样品损坏,这似乎是由于ND过渡到密度较低的非金刚石碳相所致。当我们添加5 wt。当C_(60)富勒烯的百分含量达到初始ND时,金刚石转变为非金刚石碳状状态是在低于1400摄氏度的温度下发生的,并且热导率从50 W /(m-K)增加。发现ND样品的热导率为约50W /(m中心点K),而微金刚石为约500W /(m中心点K)。

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