High-Performance Ag 2 Se/Methyl Cellulose Thermoelectric Composites for Flexible Power Generators

Author:

Xiao Zuo1,Meng Qiufeng1,Du Yong1,Wei Ping2,Qin Jie1,Chen Jingyu34,Wang Zhongchang5,Eklund Per6

Affiliation:

1. School of Materials Science and Engineering, Shanghai Institute of Technology, 100 Haiquan Road, Shanghai 201418, China.

2. State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, Wuhan University of Technology, Wuhan 430070, China.

3. The Center of Functional Materials for Working Fluids of Oil and Gas Field, School of New Energy and Materials, Southwest Petroleum University, Chengdu 610500, China.

4. Sichuan Engineering Technology Research Center of Basalt Fiber Composites Development and Application, State Key Laboratory of Oil and Gas Reservoir Geology and Exploitation, Southwest Petroleum University, Chengdu 610500, Sichuan, China.

5. International Iberian Nanotechnology Laboratory, Av. Mestre Jose Veiga s/n, 4715–330 Braga, Portugal.

6. Thin Film Physics Division, Department of Physics, Chemistry and Biology (IFM), Linköping University, SE-58183 Linköping, Sweden.

Abstract

Flexible thermoelectric generators (FTEGs) offer a promising solution for powering wearable electronics, while their practical applications are mainly obstructed by the moderate properties of flexible thermoelectric (TE) materials. Here, flexible Ag 2 Se nanowire (NW)/methyl cellulose (MC) composite films were developed via facile screen-printing technology combined with cold pressing and annealing treatment, and a highest power factor of 1,641.58 μW m −1 K −2 at 360 K was achieved. The reasons for the high TE performance of the Ag 2 Se NW/MC composite films were because, after the annealing treatment, the Ag 2 Se NWs were sintered to form conductive network structures, the crystallinity of Ag 2 Se was markedly enhanced, and the content of insulating phase MC in the composite film was decreased. The Ag 2 Se NW/MC composite film held appreciable flexibility, as its room-temperature power factor (1,312.08 μW m −1 K −2 ) can retain ~93% after bending for 1,000 cycles at a radius of 4 mm. Furthermore, the assembled FTEG consisting of 4 strips can generate a maximal power density of 3.51 W m −2 at a temperature difference of 14.1 K. Our results open an effective and large-scale strategy for fabricating high-performance flexible TE materials and energy-harvesting devices.

Funder

Shuguang Program of Shanghai Education Development Foundation and Shanghai Municipal Education Commission

Natural Science Foundation of Shanghai

Shanghai Natural Science Foundation

Knut and Alice Wallenberg Foundation through the Wallenberg Academy Fellows program

Swedish Research Council

Swedish Energy Agency

Publisher

American Association for the Advancement of Science (AAAS)

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