Flexible thermoelectric devices show great promise as sustainable power units for the exponentially increasing self-powered wearable electronics and ultra-widely distributed wireless sensor networks. While exciting proof-of-concept demonstrations have been reported, their large-scale implementation is impeded by unsatisfactory device performance and costly device fabrication techniques. Here, we develop Ag(2)Se-based thermoelectric films and flexible devices via inkjet printing. Large-area patterned arrays with microscale resolution are obtained in a dimensionally controlled manner by manipulating ink formulations and tuning printing parameters. Printed Ag(2)Se-based films exhibit (00âl)-textured feature, and an exceptional power factor (1097 μWm(-1)K(-2) at 377âK) is obtained by engineering the film composition and microstructure. Benefiting from high-resolution device integration, fully inkjet-printed Ag(2)Se-based flexible devices achieve a record-high normalized power (2 µWK(-2)cm(-2)) and superior flexibility. Diverse application scenarios are offered by inkjet-printed devices, such as continuous power generation by harvesting thermal energy from the environment or human bodies. Our strategy demonstrates the potential to revolutionize the design and manufacture of multi-scale and complex flexible thermoelectric devices while reducing costs, enabling them to be integrated into emerging electronic systems as sustainable power sources.
Fully inkjet-printed Ag(2)Se flexible thermoelectric devices for sustainable power generation.
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作者:Liu Yan, Zhang Qihao, Huang Aibin, Zhang Keyi, Wan Shun, Chen Hongyi, Fu Yuntian, Zuo Wusheng, Wang Yongzhe, Cao Xun, Wang Lianjun, Lemmer Uli, Jiang Wan
| 期刊: | Nature Communications | 影响因子: | 15.700 |
| 时间: | 2024 | 起止号: | 2024 Mar 8; 15(1):2141 |
| doi: | 10.1038/s41467-024-46183-1 | ||
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