Enhanced Electrical Transport Properties via Defect Control for Screen-Printed Bi 2 Te 3 Films over a Wide Temperature Range.

ACS applied materials & interfaces(2020)

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摘要
The application of screen-printed thin-film thermoelectric (TE) devices is still in its infancy, mainly due to low TE performance of screen-printed films, especially the poor electrical transport properties. Herein, we design and prepare a high-performance screen-printed BiTe film through introducing excessive Te-based nanosolder (Te-NS) to simultaneously realize the conduction channel construction and defect control. On one hand, the promoted carrier migration makes the electrical conductivity dramatically rise about 7 times, with a maximum power factor of 4.65 μW cm K . Meanwhile, the defect formation mechanism in screen-printed BiTe film after the introduction of Te-NS is also in-depth studied, and the bipolar conduction is reduced by more generation of Te, and/or more suppression of Bi', resulting in postponed temperature of maximum Seebeck coefficient. Hence, the large engineering power factor is achieved with excellent temperature linearity, indicating a possibility of screen-printed film application in a large temperature region. Then, a TE device with single leg has been fabricated to further demonstrate the generation validity. The open-circuit voltage of 11.34 mV and the maximum output power of 27.1 μW at temperature gradient of 105 K have been achieved over a wide temperature range from 303 to 478 K. This study provides a theoretical and practical basis for the performance improvement of screen-printed TE films and devices.
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关键词
thermoelectric film,screen printing,electrical transport property,wide temperature range,defect control
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