Venkatasubramanian R, Siivola E, Colpitts T, O'Quinn B
Research Triangle Institute, Research Triangle Park, North Carolina 27709, USA.
Nature. 2001 Oct 11;413(6856):597-602. doi: 10.1038/35098012.
Thermoelectric materials are of interest for applications as heat pumps and power generators. The performance of thermoelectric devices is quantified by a figure of merit, ZT, where Z is a measure of a material's thermoelectric properties and T is the absolute temperature. A material with a figure of merit of around unity was first reported over four decades ago, but since then-despite investigation of various approaches-there has been only modest progress in finding materials with enhanced ZT values at room temperature. Here we report thin-film thermoelectric materials that demonstrate a significant enhancement in ZT at 300 K, compared to state-of-the-art bulk Bi2Te3 alloys. This amounts to a maximum observed factor of approximately 2.4 for our p-type Bi2Te3/Sb2Te3 superlattice devices. The enhancement is achieved by controlling the transport of phonons and electrons in the superlattices. Preliminary devices exhibit significant cooling (32 K at around room temperature) and the potential to pump a heat flux of up to 700 W cm-2; the localized cooling and heating occurs some 23,000 times faster than in bulk devices. We anticipate that the combination of performance, power density and speed achieved in these materials will lead to diverse technological applications: for example, in thermochemistry-on-a-chip, DNA microarrays, fibre-optic switches and microelectrothermal systems.
热电材料作为热泵和发电机具有应用价值。热电装置的性能由品质因数ZT来量化,其中Z衡量材料的热电性能,T为绝对温度。四十多年前首次报道了一种品质因数约为1的材料,但从那时起,尽管对各种方法进行了研究,但在寻找室温下具有更高ZT值的材料方面进展甚微。在此,我们报道了一种薄膜热电材料,与最先进的块状Bi2Te3合金相比,该材料在300 K时的ZT有显著提高。对于我们的p型Bi2Te3/Sb2Te3超晶格器件,这相当于观察到的最大系数约为2.4。这种提高是通过控制超晶格中声子和电子的输运来实现的。初步器件显示出显著的冷却效果(室温附近为32 K),并且有潜力泵送高达700 W cm-2的热通量;局部冷却和加热的速度比块状器件快约23000倍。我们预计,这些材料所实现的性能、功率密度和速度的结合将带来多种技术应用:例如,用于芯片级热化学、DNA微阵列、光纤开关和微电热系统。