Oxidation-induced thermopower inversion in nanocrystalline SnSe thin film
Abstract Given the growing demand for environmentally friendly energy sources, thermoelectric energy conversion has attracted increased interest as a promising CO2-free technology. SnSe single crystals have attracted attention as a next generation thermoelectric material due to outstanding thermoele...
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doaj-4d6c4e8104954a5184015efaf61a214b2021-01-17T12:42:57ZengNature Publishing GroupScientific Reports2045-23222021-01-011111810.1038/s41598-021-81195-7Oxidation-induced thermopower inversion in nanocrystalline SnSe thin filmSunao Shimizu0Kazumoto Miwa1Takeshi Kobayashi2Yujiro Tazawa3Shimpei Ono4Materials Research Laboratory, Central Research Institute of Electric Power Industry (CRIEPI)Electric Power Engineering SystemsMaterials Research Laboratory, Central Research Institute of Electric Power Industry (CRIEPI)Materials Research Laboratory, Central Research Institute of Electric Power Industry (CRIEPI)Materials Research Laboratory, Central Research Institute of Electric Power Industry (CRIEPI)Abstract Given the growing demand for environmentally friendly energy sources, thermoelectric energy conversion has attracted increased interest as a promising CO2-free technology. SnSe single crystals have attracted attention as a next generation thermoelectric material due to outstanding thermoelectric properties arising from ultralow thermal conductivity. For practical applications, on the other hand, polycrystalline SnSe should be also focused because the production cost and the flexibility for applications are important factors, which requires the systematic investigation of the stability of thermoelectric performance under a pseudo operating environment. Here, we report that the physical properties of SnSe crystals with nano to submicron scale are drastically modified by atmospheric annealing. We measured the Seebeck effect while changing the annealing time and found that the large positive thermopower, + 757 μV K−1, was completely suppressed by annealing for only a few minutes and was eventually inverted to be the large negative value, − 427 μV K−1. This result would further accelerate intensive studies on SnSe nanostructures, especially focusing on the realistic device structures and sealing technologies for energy harvesting applications.https://doi.org/10.1038/s41598-021-81195-7 |
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DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Sunao Shimizu Kazumoto Miwa Takeshi Kobayashi Yujiro Tazawa Shimpei Ono |
spellingShingle |
Sunao Shimizu Kazumoto Miwa Takeshi Kobayashi Yujiro Tazawa Shimpei Ono Oxidation-induced thermopower inversion in nanocrystalline SnSe thin film Scientific Reports |
author_facet |
Sunao Shimizu Kazumoto Miwa Takeshi Kobayashi Yujiro Tazawa Shimpei Ono |
author_sort |
Sunao Shimizu |
title |
Oxidation-induced thermopower inversion in nanocrystalline SnSe thin film |
title_short |
Oxidation-induced thermopower inversion in nanocrystalline SnSe thin film |
title_full |
Oxidation-induced thermopower inversion in nanocrystalline SnSe thin film |
title_fullStr |
Oxidation-induced thermopower inversion in nanocrystalline SnSe thin film |
title_full_unstemmed |
Oxidation-induced thermopower inversion in nanocrystalline SnSe thin film |
title_sort |
oxidation-induced thermopower inversion in nanocrystalline snse thin film |
publisher |
Nature Publishing Group |
series |
Scientific Reports |
issn |
2045-2322 |
publishDate |
2021-01-01 |
description |
Abstract Given the growing demand for environmentally friendly energy sources, thermoelectric energy conversion has attracted increased interest as a promising CO2-free technology. SnSe single crystals have attracted attention as a next generation thermoelectric material due to outstanding thermoelectric properties arising from ultralow thermal conductivity. For practical applications, on the other hand, polycrystalline SnSe should be also focused because the production cost and the flexibility for applications are important factors, which requires the systematic investigation of the stability of thermoelectric performance under a pseudo operating environment. Here, we report that the physical properties of SnSe crystals with nano to submicron scale are drastically modified by atmospheric annealing. We measured the Seebeck effect while changing the annealing time and found that the large positive thermopower, + 757 μV K−1, was completely suppressed by annealing for only a few minutes and was eventually inverted to be the large negative value, − 427 μV K−1. This result would further accelerate intensive studies on SnSe nanostructures, especially focusing on the realistic device structures and sealing technologies for energy harvesting applications. |
url |
https://doi.org/10.1038/s41598-021-81195-7 |
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