» Articles » PMID: 37049306

Positive and Negative Changes in the Electrical Conductance Related to Hybrid Filler Distribution Gradient in Composite Flexible Thermoelectric Films Subjected to Bending

Overview
Date 2023 Apr 13
PMID 37049306
Authors
Affiliations
Soon will be listed here.
Abstract

P-type multiwalled carbon nanotubes (MWCNTs), as well as heterostructures fabricated by direct deposition of inorganic thermoelectric materials as antimony and bismuth chalcogenides on MWCNT networks are known as perspective materials for application in flexible thermoelectric polymer-based composites. In this work, the electrical response of three types of SbTe-MWCNT heterostructures-based flexible films-free standing on a flexible substrate, encapsulated in polydimethylsiloxane (PDMS), and mixed in polyvinyl alcohol (PVA) is studied in comparison with the flexible films prepared by the same methods using bare MWCNTs. The electrical conductance of these films when each side of it was subsequently subjected to compressive and tensile stress during the film bending down to a 3 mm radius is investigated in relation to the distribution gradient of SbTe-MWCNT heterostructures or bare MWCNTs within the film. It is found that all investigated SbTe-MWCNT films exhibit a reversible increase in the conductance in response to the compressive stress of the film side with the highest filler concentration and its decrease in response to the tensile stress. In contrast, free-standing and encapsulated bare MWCNT networks with uniform distribution of nanotubes showed a decrease in the conductance irrelevant to the bending direction. In turn, the samples with the gradient distribution of the MWCNTs, prepared by mixing the MWCNTs with PVA, revealed behavior that is similar to the SbTe-MWCNT heterostructures-based films. The analysis of the processes impacting the changes in the conductance of the SbTe-MWCNT heterostructures and bare MWCNTs is performed. The proposed in this work bending method can be applied for the control of the uniformity of distribution of components in heterostructures and fillers in polymer-based composites.

Citing Articles

Enhanced thermoelectric properties of self-assembling ZnO nanowire networks encapsulated in nonconductive polymers.

Volkova M, Sondors R, Bugovecka L, Kons A, Avotina L, Andzane J Sci Rep. 2023; 13(1):21061.

PMID: 38030691 PMC: 10687228. DOI: 10.1038/s41598-023-48385-x.

References
1.
Blackburn J, Ferguson A, Cho C, Grunlan J . Carbon-Nanotube-Based Thermoelectric Materials and Devices. Adv Mater. 2018; 30(11). DOI: 10.1002/adma.201704386. View

2.
Kim J, Lee J, Jo S, Chin B, Baek J, Ahn K . Room temperature processed high mobility W-doped InO electrodes coated via in-line arc plasma ion plating for flexible OLEDs and quantum dots LEDs. Sci Rep. 2018; 8(1):12019. PMC: 6089989. DOI: 10.1038/s41598-018-30548-w. View

3.
Jin Q, Jiang S, Zhao Y, Wang D, Qiu J, Tang D . Flexible layer-structured BiTe thermoelectric on a carbon nanotube scaffold. Nat Mater. 2018; 18(1):62-68. DOI: 10.1038/s41563-018-0217-z. View

4.
Bitenieks J, Buks K, Merijs-Meri R, Andzane J, Ivanova T, Bugovecka L . Flexible N-Type Thermoelectric Composites Based on Non-Conductive Polymer with Innovative BiSe-CNT Hybrid Nanostructured Filler. Polymers (Basel). 2021; 13(23). PMC: 8659493. DOI: 10.3390/polym13234264. View

5.
Pires A, Cruz I, Silva J, Oliveira G, Ferreira-Teixeira S, Lopes A . Printed Flexible μ-Thermoelectric Device Based on Hybrid BiTe/PVA Composites. ACS Appl Mater Interfaces. 2019; 11(9):8969-8981. DOI: 10.1021/acsami.8b18081. View