Yu Penglu, Feng Linan, Tang Wenxin, Liu Chan, Lan Jin-le, Lin Yuan-Hua, Yang Xiaoping
State Key Laboratory of Organic-Inorganic Composites, College of Materials Science and Engineering, Beijing University of Chemical Technology, North Third Ring Road 15, Chaoyang District, Beijing 100029, P. R. China.
State Key Laboratory of New Ceramics and Fine Processing, School of Materials Science and Engineering, Tsinghua University, Shuangqing Road 30, Haidian District, Beijing 100084, P. R. China.
ACS Appl Mater Interfaces. 2023 Mar 15;15(10):13144-13154. doi: 10.1021/acsami.3c00118. Epub 2023 Mar 1.
As for the self-supporting composite films, it is significant to develop a structural design that allows for excellent flexibility while reducing the negative effect on thermoelectric (TE) properties. Herein, a robust, flexible TE film was fabricated by in situ chemical transformation and vacuum-assisted filtration without any organic solvents involved. The performance of the films was further optimized by adjusting the Ag/Te ratio and post-treatment methods. Owing to the semi-interpenetrating nanonetwork structure formed by AgTe nanowires and bacterial cellulose, the obtained TE film displayed a high tensile strength of ∼78.4 MPa and a high power factor of 48.9 μW m K at room temperature. A slight electrical conductivity decrement of the TE film in flexible test (∼2% after 1000 bending cycles) indicates an excellent flexibility. Finally, a TE bracelet was assembled to harvest body heat energy, and a steady current of ∼2.7 μA was generated when worn on the wrist indoors. This work provides a reference for the structural design and practical application of flexible TE films.
对于自支撑复合薄膜而言,开发一种结构设计至关重要,这种设计要在减少对热电(TE)性能负面影响的同时具备出色的柔韧性。在此,通过原位化学转化和真空辅助过滤制备了一种坚固、柔性的TE薄膜,且未涉及任何有机溶剂。通过调整Ag/Te比例和后处理方法进一步优化了薄膜的性能。由于AgTe纳米线和细菌纤维素形成了半互穿纳米网络结构,所制备的TE薄膜在室温下显示出约78.4 MPa的高拉伸强度和48.9 μW m K的高功率因数。TE薄膜在柔性测试中的电导率略有下降(1000次弯曲循环后约为2%),表明其具有出色的柔韧性。最后,组装了一个TE手镯以收集人体热能,在室内戴在手腕上时可产生约2.7 μA的稳定电流。这项工作为柔性TE薄膜的结构设计和实际应用提供了参考。