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High Thermoelectric Performance and Ultrahigh Flexibility Ag 2 S 1- x Se x film on a Nylon Membrane.

Miaomiao WuJiajia LiYing LiuZixing WangPing WeiWenyu ZhaoKefeng Cai
Published in: ACS applied materials & interfaces (2023)
Flexible thermoelectric (TE) generators have recently attracted increasing attention as they have the potential to power wearable devices using the temperature difference between the human body and the environment. Ag 2 S is recently reported to have plasticity near room temperature; however, it has very low electrical conductivity, leading to its poor TE property. Here, to improve the TE property, different amounts of Se (Se/Ag 2 S molar ratios being 0.4, 0.5, and 0.6) solid solution-substituted Ag 2 S films on a nylon membrane are prepared by combing wet-chemical synthesis, vacuum filtration, and hot-pressing. The film (Se/Ag 2 S molar ratio = 0.6) exhibits a better TE performance with a power factor of 477.4 ± 15.20 μW m -1 K -2 at room temperature, which is comparable to that of bulk Ag 2 S 1- x Se x . In addition, the film possesses excellent flexibility (only ∼5.4% decrease in electrical conductivity after 2000 times bending along a rod with a radius of 4 mm). The power density of a 6-leg TE generator assembled with the film is 6.6 W/m 2 under a temperature difference of 28.8 K. This work provides a facile new route to Ag 2 S-based TE films with low cost, high TE performance, and ultrahigh flexibility.
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