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High Thermoelectric Performance in n-Type Perylene Bisimide Induced by the Soret Effect

Authors :
Jiang, Qinglin
Sun, Hengda
Zhao, Duokai
Zhang, Fengling
Hu, Dehua
Jiao, Fei
Qin, Leiqiang
Linseis, Vincent
Fabiano, Simone
Crispin, Xavier
Ma, Yuguang
Cao, Yong
Jiang, Qinglin
Sun, Hengda
Zhao, Duokai
Zhang, Fengling
Hu, Dehua
Jiao, Fei
Qin, Leiqiang
Linseis, Vincent
Fabiano, Simone
Crispin, Xavier
Ma, Yuguang
Cao, Yong
Publication Year :
2020

Abstract

Low-cost, non-toxic, abundant organic thermoelectric materials are currently under investigation for use as potential alternatives for the production of electricity from waste heat. While organic conductors reach electrical conductivities as high as their inorganic counterparts, they suffer from an overall low thermoelectric figure of merit (ZT) due to their small Seebeck coefficient. Moreover, the lack of efficient n-type organic materials still represents a major challenge when trying to fabricate efficient organic thermoelectric modules. Here, a novel strategy is proposed both to increase the Seebeck coefficient and achieve the highest thermoelectric efficiency for n-type organic thermoelectrics to date. An organic mixed ion-electron n-type conductor based on highly crystalline and reduced perylene bisimide is developed. Quasi-frozen ionic carriers yield a large ionic Seebeck coefficient of -3021 mu V K-1, while the electronic carriers dominate the electrical conductivity which is as high as 0.18 S cm(-1)at 60% relative humidity. The overall power factor is remarkably high (165 mu W m(-1)K(-2)), with aZT= 0.23 at room temperature. The resulting single leg thermoelectric generators display a high quasi-constant power output. This work paves the way for the design and development of efficient organic thermoelectrics by the rational control of the mobility of the electronic and ionic carriers.<br />Funding Agencies|Natural Science Foundation of ChinaNational Natural Science Foundation of China (NSFC) [51521002, 21334002]; Swedish Government Research Area in Materials Science on Functional Materials at Linkoping University [200900971]; Knut and Alice Wallenberg Foundation (Tail of the Sun); Swedish Research CouncilSwedish Research Council [2016-03979]; Swedish Energy AgencySwedish Energy Agency; AForsk [18-313]

Details

Database :
OAIster
Notes :
English
Publication Type :
Electronic Resource
Accession number :
edsoai.on1234761168
Document Type :
Electronic Resource
Full Text :
https://doi.org/10.1002.adma.202002752