| Literature DB >> 30783113 |
Yufei Ding1, Yang Qiu2, Kefeng Cai3, Qin Yao4, Song Chen5, Lidong Chen6, Jiaqing He7.
Abstract
Researches on flexible thermoelectric materials usually focus on conducting polymers and conducting polymer-based composites; however, it is a great challenge to obtain high thermoelectric properties comparable to inorganic counterparts. Here, we report an n-type Ag2Se film on flexible nylon membrane with an ultrahigh power factor ~987.4 ± 104.1 μWm-1K-2 at 300 K and an excellent flexibility (93% of the original electrical conductivity retention after 1000 bending cycles around a 8-mm diameter rod). The flexibility is attributed to a synergetic effect of the nylon membrane and the Ag2Se film intertwined with numerous high-aspect-ratio Ag2Se grains. A thermoelectric prototype composed of 4-leg of the Ag2Se film generates a voltage and a maximum power of 18 mV and 460 nW, respectively, at a temperature difference of 30 K. This work opens opportunities of searching for high performance thermoelectric film for flexible thermoelectric devices.Entities:
Year: 2019 PMID: 30783113 PMCID: PMC6381183 DOI: 10.1038/s41467-019-08835-5
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919
Fig. 1Characterization of the Ag2Se film. a XRD pattern of the Ag2Se film. b Low magnification surface FESEM image of the Ag2Se film. c High magnification surface FESEM image of the Ag2Se film. d Overview HAADF-STEM image. e Typical STEM image. f FFT image corresponding to e. g Typical HRSTEM image
Fig. 2In-plane TE properties of the film. a Temperature dependence of Seebeck coefficient, electrical conductivity and power factor for the Ag2Se film (Each point shows the standard deviations from two independent measurements). b Temperature dependence of carrier concentration and mobility for the Ag2Se film
Comparison of TE performance of flexible n-type TE materials at room temperature
| Materials | PF (μW m−1 K−2) | Ref. | ||
|---|---|---|---|---|
| Ag2Te/copy-paper | −100 | 85 | 85 |
[ |
| Cu-doped Bi2Se3/PVDF | −84 | 146 | 103.2 |
[ |
| Ni NWs/PVDF | −20.6 | 4700 | 200 |
[ |
| Bi2Te3/Cellulose fiber | −130 | 148 | 250 |
[ |
| C60/TiS2 | −101 | 390 | 400 |
[ |
| HgSe | −518 | 20 | 550 |
[ |
| TiS2[tetrabutylammonium]0.013[hexylammonium]0.019 | −150 | 400 | 904 |
[ |
| Ag2Se/Nylon membrane | −140 | 497 | 987 | This work |
Fig. 3Flexibility of the film and evaluation of the heterointerface. a The ratio of electrical conductivity of the film before and after bending as a function of bending cycles. b HRSTEM image showing good combination between the Ag2Se film and nylon membrane. c From left to right: HAADF image of a heterointerface between a Ag2Se grain and nylon, overall corresponding EDS image and EDS image of elemental Ag, Se, C, N, and O
Fig. 4Schematic illustration and performance of the prepared device. a The schematic illustration of the TE device. b The open-circuit voltage at various temperature difference. c The output voltage and output power versus current at temperature difference of 30 K