Abinaya Chandrasekaran, Bethke Kevin, Andrei Virgil, Baumann Jonas, Pollakowski-Herrmann Beatrix, Kanngießer Birgit, Beckhoff Burkhard, Vásquez G Cristian, Mayandi Jeyanthinath, Finstad Terje G, Rademann Klaus
Department of Materials Science, School of Chemistry, Madurai Kamaraj University Madurai-625021 India
Department of Chemistry, Humboldt-Universität zu Berlin Brook-Taylor-Strasse 2 12489 Berlin Germany
RSC Adv. 2020 Aug 12;10(49):29394-29401. doi: 10.1039/d0ra03906c. eCollection 2020 Aug 5.
The development of thin-film thermoelectric applications in sensing and energy harvesting can benefit largely from suitable deposition methods for earth-abundant materials. In this study, p-type copper oxide thin films have been prepared on soda lime silicate glass by direct current (DC) magnetron sputtering at room temperature from a pure copper metallic target in an argon atmosphere, followed by subsequent annealing steps at 300 °C under various atmospheres, namely air (CuO:air), nitrogen (CuO:N) and oxygen (CuO:O). The resultant films have been studied to understand the influence of various annealing atmospheres on the structural, spectroscopic and thermoelectric properties. X-ray diffraction (XRD) patterns of the films showed reflexes that could be assigned to those of crystalline CuO with a thin mixed CuCu oxide, which was also observed by near edge X-ray absorption fine structure spectroscopy (NEXAFS). The positive Seebeck coefficient () reached values of up to 204 μV K, confirming the p-type behavior of the films. Annealing under oxygen provided a significant improvement in the electrical conductivity up to 50 S m, resulting in a power factor of 2 μW m K. The results reveal the interplay between the intrinsic composition and the thermoelectric performance of mixed copper oxide thin films, which can be finely adjusted by simply varying the annealing atmosphere.
薄膜热电应用在传感和能量收集方面的发展在很大程度上受益于适用于储量丰富材料的沉积方法。在本研究中,通过直流(DC)磁控溅射在室温下于氩气气氛中从纯铜金属靶材在钠钙硅酸盐玻璃上制备了p型氧化铜薄膜,随后在300°C下于各种气氛中进行后续退火步骤,即空气(CuO:空气)、氮气(CuO:N)和氧气(CuO:O)。对所得薄膜进行了研究,以了解各种退火气氛对其结构、光谱和热电性能的影响。薄膜的X射线衍射(XRD)图谱显示出的反射峰可归属于具有少量混合CuCu氧化物的结晶CuO的反射峰,这也通过近边X射线吸收精细结构光谱(NEXAFS)观察到。正的塞贝克系数()达到高达204 μV K的值,证实了薄膜的p型特性。在氧气中退火使电导率显著提高至50 S m,从而得到功率因子为2 μW m K。结果揭示了混合氧化铜薄膜的固有组成与热电性能之间的相互作用,通过简单改变退火气氛即可对其进行精细调节。