Enhanced stability and thermoelectric figure-of-merit in copper selenide by lithium doping
Abstract
Superionic thermoelectric materials have been shown to have high figure-of-merits, leading to expectations for efficient high-temperature thermoelectric generators. These compounds exhibit extremely high cation diffusivity, comparable to that of a liquid, which is believed to be associated with the low thermal conductivity that makes superionic materials good for thermoelectrics. However, the superionic behavior causes cation migration that leads to device deterioration, being the main obstacle for practical applications. It has been reported that lithium doping in superionic Cu_(2−x)Se leads to suppression of the Cu ion diffusivity, but whether the material will retain the promising thermoelectric properties had not yet been investigated. Here, we report a maximum zT>1.4 from Li_(0.09)Cu_(1.9)Se, which is higher than what we find in the undoped samples. The high temperature effective weighted mobility of the doped sample is found higher than Cu_(2−x)Se, while the lattice thermal conductivity remains similar. We find signatures of suppressed bipolar conduction due to an enlarged band gap. Our findings set forth a possible route for tuning the stability of superionic thermoelectric materials.
Additional Information
© 2017 Elsevier Ltd. Available online 7 June 2017. We acknowledge D. R. Brown for discussion and ideas in the early stage of the project. The authors would like to acknowledge support from the U.S. Department of Energy, Office of Science, Basic Energy Sciences through the following programs: the Solid-State Solar-Thermal Energy Conversion Center (S3TEC), an Energy Frontier Research Center (DE-SC0001299); the Advanced Photon Source at Argonne National Laboratory (DE-AC02-06CH11357); grant for C. C. S. and M. G. W. (DE-SC0014520). J. -H. P. and M. A. W. would like to acknowledge funding from the Natural Sciences and Engineering Research Council of Canada.Attached Files
Submitted - SDK_MTPhys_authorVersion.pdf
Supplemental Material - 1-s2.0-S254252931730055X-mmc1.pdf
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Additional details
- Eprint ID
- 78933
- DOI
- 10.1016/j.mtphys.2017.04.002
- Resolver ID
- CaltechAUTHORS:20170711-094910223
- Department of Energy (DOE)
- DE-SC0001299
- Department of Energy (DOE)
- DE-AC02-06CH11357
- Department of Energy (DOE)
- DE-SC0014520
- Natural Sciences and Engineering Research Council of Canada (NSERC)
- Created
-
2017-07-11Created from EPrint's datestamp field
- Updated
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2021-11-15Created from EPrint's last_modified field