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通过添加石墨烯在室温下从镧锶钛氧化物进行热电发电。

Thermoelectric Power Generation from Lanthanum Strontium Titanium Oxide at Room Temperature through the Addition of Graphene.

作者信息

Lin Yue, Norman Colin, Srivastava Deepanshu, Azough Feridoon, Wang Li, Robbins Mark, Simpson Kevin, Freer Robert, Kinloch Ian A

机构信息

†The School of Materials, University of Manchester, Oxford Road, Manchester M13 9PL, United Kingdom.

‡European Thermodynamics Ltd, 8 Priory Business Park, Kibworth, Leicester LE8 0RX, United Kingdom.

出版信息

ACS Appl Mater Interfaces. 2015 Jul 29;7(29):15898-908. doi: 10.1021/acsami.5b03522. Epub 2015 Jul 20.

Abstract

The applications of strontium titanium oxide based thermoelectric materials are currently limited by their high operating temperatures of >700 °C. Herein, we show that the thermal operating window of lanthanum strontium titanium oxide (LSTO) can be reduced to room temperature by the addition of a small amount of graphene. This increase in operating performance will enable future applications such as generators in vehicles and other sectors. The LSTO composites incorporated one percent or less of graphene and were sintered under an argon/hydrogen atmosphere. The resultant materials were reduced and possessed a multiphase structure with nanosized grains. The thermal conductivity of the nanocomposites decreased upon the addition of graphene, whereas the electrical conductivity and power factor both increased significantly. These factors, together with a moderate Seebeck coefficient, meant that a high power factor of ∼2500 μWm(-1)K(-2) was reached at room temperature at a loading of 0.6 wt % graphene. The highest thermoelectric figure of merit (ZT) was achieved when 0.6 wt % graphene was added (ZT = 0.42 at room temperature and 0.36 at 750 °C), with >280% enhancement compared to that of pure LSTO. A preliminary 7-couple device was produced using bismuth strontium cobalt oxide/graphene-LSTO pucks. This device had a Seebeck coefficient of ∼1500 μV/K and an open voltage of 600 mV at a mean temperature of 219 °C.

摘要

基于锶钛氧化物的热电材料的应用目前受到其>700°C的高工作温度的限制。在此,我们表明,通过添加少量石墨烯,镧锶钛氧化物(LSTO)的热工作窗口可以降低到室温。这种运行性能的提高将使未来在车辆和其他领域的发电机等应用成为可能。LSTO复合材料中石墨烯的含量为百分之一或更低,并在氩/氢气氛下烧结。所得材料被还原并具有纳米尺寸晶粒的多相结构。添加石墨烯后,纳米复合材料的热导率降低,而电导率和功率因数均显著增加。这些因素,再加上适度的塞贝克系数,意味着在室温下,当石墨烯负载量为0.6 wt%时,达到了约2500 μWm(-1)K(-2)的高功率因数。当添加0.6 wt%的石墨烯时,实现了最高的热电优值(ZT)(室温下ZT = 0.42,750°C下ZT = 0.36),与纯LSTO相比提高了>280%。使用铋锶钴氧化物/石墨烯-LSTO圆片制作了一个初步的7对器件。该器件在平均温度为219°C时的塞贝克系数约为1500 μV/K,开路电压为600 mV。

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