Improved performance of thermoelectric power generating paper based on carbon nanotube composite papers

We propose two techniques to improve the power generating performance of the “thermoelectric power generating paper” based on carbon nanotube (CNT) that we reported in our previous study. First, we remove the excess amount of dispersant (sodium dodecyl sulfate; SDS) in the sample by immersing the sa...

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Main Authors: Ayumu Miyama, Takahide Oya
Format: Article
Language:English
Published: Elsevier 2022-04-01
Series:Carbon Trends
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2667056922000050
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author Ayumu Miyama
Takahide Oya
author_facet Ayumu Miyama
Takahide Oya
author_sort Ayumu Miyama
collection DOAJ
description We propose two techniques to improve the power generating performance of the “thermoelectric power generating paper” based on carbon nanotube (CNT) that we reported in our previous study. First, we remove the excess amount of dispersant (sodium dodecyl sulfate; SDS) in the sample by immersing the sample in nitric acid under a suitable condition (e.g., only SDS is expected to be decomposed and removed, but CNT and pulp are retained), thus improving the conductivity of the paper. Second, we dope the contained CNT in the composite paper by adsorbing KOH and 18-Crown-6 molecule physically so that it exhibits an n-type characteristic. In thermoelectric power generation, a large electromotive force can generally be obtained by combining p-type and n-type semiconductors. The semiconducting CNT is known to exhibit a p-type property normally because of O2 adsorption in the air, so we tried to make an n-type semiconducting paper. As a result, we succeeded in obtaining the n-type semiconducting paper, and the paper maintained the property for at least 45 days. Finally, we multi-staged the modified paper for a demonstration of power generation and measured the performance. The results showed that the multi-staged thermoelectric power generating paper had up to 10.0 mV of electromotive force and 0.31 mA of short-circuit current. This unique thermoelectric power generating paper has great potential for use in daily life by combining it with existing products made from paper.
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spelling doaj.art-042025c728eb4e7c8b3f20ef3bcd6fee2022-12-22T01:38:18ZengElsevierCarbon Trends2667-05692022-04-017100149Improved performance of thermoelectric power generating paper based on carbon nanotube composite papersAyumu Miyama0Takahide Oya1Graduate School of Engineering Science, Yokohama National University, 79-5, Tokiwadai, Hodogaya-ku, Yokohama, 240–8501, JapanCorresponding author.; Graduate School of Engineering Science, Yokohama National University, 79-5, Tokiwadai, Hodogaya-ku, Yokohama, 240–8501, JapanWe propose two techniques to improve the power generating performance of the “thermoelectric power generating paper” based on carbon nanotube (CNT) that we reported in our previous study. First, we remove the excess amount of dispersant (sodium dodecyl sulfate; SDS) in the sample by immersing the sample in nitric acid under a suitable condition (e.g., only SDS is expected to be decomposed and removed, but CNT and pulp are retained), thus improving the conductivity of the paper. Second, we dope the contained CNT in the composite paper by adsorbing KOH and 18-Crown-6 molecule physically so that it exhibits an n-type characteristic. In thermoelectric power generation, a large electromotive force can generally be obtained by combining p-type and n-type semiconductors. The semiconducting CNT is known to exhibit a p-type property normally because of O2 adsorption in the air, so we tried to make an n-type semiconducting paper. As a result, we succeeded in obtaining the n-type semiconducting paper, and the paper maintained the property for at least 45 days. Finally, we multi-staged the modified paper for a demonstration of power generation and measured the performance. The results showed that the multi-staged thermoelectric power generating paper had up to 10.0 mV of electromotive force and 0.31 mA of short-circuit current. This unique thermoelectric power generating paper has great potential for use in daily life by combining it with existing products made from paper.http://www.sciencedirect.com/science/article/pii/S2667056922000050Carbon nanotubeThermoelectric power generationDopingCarbon-nanotube-composite paper
spellingShingle Ayumu Miyama
Takahide Oya
Improved performance of thermoelectric power generating paper based on carbon nanotube composite papers
Carbon Trends
Carbon nanotube
Thermoelectric power generation
Doping
Carbon-nanotube-composite paper
title Improved performance of thermoelectric power generating paper based on carbon nanotube composite papers
title_full Improved performance of thermoelectric power generating paper based on carbon nanotube composite papers
title_fullStr Improved performance of thermoelectric power generating paper based on carbon nanotube composite papers
title_full_unstemmed Improved performance of thermoelectric power generating paper based on carbon nanotube composite papers
title_short Improved performance of thermoelectric power generating paper based on carbon nanotube composite papers
title_sort improved performance of thermoelectric power generating paper based on carbon nanotube composite papers
topic Carbon nanotube
Thermoelectric power generation
Doping
Carbon-nanotube-composite paper
url http://www.sciencedirect.com/science/article/pii/S2667056922000050
work_keys_str_mv AT ayumumiyama improvedperformanceofthermoelectricpowergeneratingpaperbasedoncarbonnanotubecompositepapers
AT takahideoya improvedperformanceofthermoelectricpowergeneratingpaperbasedoncarbonnanotubecompositepapers