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首页> 外文期刊>Journal of Physics, D. Applied Physics: A Europhysics Journal >Thermal conductivity engineering in width-modulated silicon nanowires and thermoelectric efficiency enhancement
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Thermal conductivity engineering in width-modulated silicon nanowires and thermoelectric efficiency enhancement

机译:宽度调制硅纳米线的热导电工程和热电效率增强

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Width-modulated nanowires have been proposed as efficient thermoelectric materials. Here, the electron and phonon transport properties and the thermoelectric efficiency are discussed for dimensions above the quantum confinement regime. The thermal conductivity decreases dramatically in the presence of thin constrictions due to their ballistic thermal resistance. It shows a scaling behavior upon the width-modulation rate that allows for thermal conductivity engineering. The electron conductivity also decreases due to enhanced boundary scattering by the constrictions. The effect of boundary scattering is weaker for electrons than for phonons and the overall thermoelectric efficiency is enhanced. A ZT enhancement by a factor of 20-30 is predicted for width-modulated nanowires compared to bulk silicon. Our findings indicate that width-modulated nanostructures are promising for developing silicon nanostructures with high thermoelectric efficiency.
机译:已经提出了宽度调制的纳米线作为高效的热电材料。 这里,电子和声子传输性能和热电效率被讨论用于量子监禁状态的尺寸。 由于它们的弹道热阻,在存在薄的收缩的情况下,导热率显着降低。 它显示了允许导热率工程的宽度调制速率的缩放行为。 由于收缩的边界散射增强,电子电导率也降低。 边界散射的效果比声子较弱,而且对声子较低,并且整体热电效率得到增强。 与散装硅相比,预测宽度调制纳米线的ZT增强值为20-30。 我们的研究结果表明,宽度调制的纳米结构是对具有高热电效率的硅纳米结构开发。

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