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Disturbed and Scattered: The Path of Thermal Conduction through Diamond Lattice

机译:令人不安和散落:通过金刚石晶格进行热传导的路径

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With more phonons carrying the energy in the lattice, the phonon density of states in diamond extends to a much higher frequencies than that of any other material. This is related to the Debye temperature of diamond, being the highest of any bulk materials and of having the highest sound velocity of any known bulk materials. However, the thermal conductivity not only depends on the number of phonons and how fast they are, but also on how long they can travel without being disturbed or scattered. The measurement of this length of travel is the Mean Free Path of the phonons, l, which depends on the number of phonons in the lattice through the 3-phonon processes (Normal and Umpklapp), and the imperfections in the lattice (boundaries, grain boundaries, non sp3 bonds, isotopes, impurities, extended defects, dislocations, etc.). Consequently, the "real world" thermal conductivity of a given piece of diamond will depend on the "quality" of the lattice, yielding values from 1 W/m°K (ultra-nanocrystalline diamond) to more than 3400 W/m°K for isotopically pure single crystal diamond.
机译:利用更多的声子携带晶格中的能量,钻石中的状态的声子密度延伸到比任何其他材料的频率更高。这与金刚石的脱娇温度有关,是任何散装材料的最高,并且具有任何已知的散装材料的最高声速。然而,导热率不仅取决于声子的数量以及它们的速度,而且还有多长时间行驶而不会受到干扰或分散。这种行程长度的测量是声子,L的平均自由路径,这取决于通过3-ampklon过程(正常和UMPKLAPP)的晶格中的声子数,以及格子(边界,谷物)中的缺陷边界,非SP3键,同位素,杂质,延长缺陷,脱位等)。因此,给定金刚石的“现实世界”导热率取决于晶格的“质量”,从1W / m°K(超纳米晶金刚石)产生的值超过3400W / m°K对于同位素纯的单晶金刚石。

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