Highly Multifunctional GNP/Epoxy Nanocomposites: From Strain-Sensing to Joule Heating Applications.

carbon nanotubes electrical properties joule heating strain sensing thermal properties

Journal

Nanomaterials (Basel, Switzerland)
ISSN: 2079-4991
Titre abrégé: Nanomaterials (Basel)
Pays: Switzerland
ID NLM: 101610216

Informations de publication

Date de publication:
05 Dec 2020
Historique:
received: 16 11 2020
revised: 01 12 2020
accepted: 03 12 2020
entrez: 9 12 2020
pubmed: 10 12 2020
medline: 10 12 2020
Statut: epublish

Résumé

A performance mapping of GNP/epoxy composites was developed according to their electromechanical and electrothermal properties for applications as strain sensors and Joule heaters. To achieve this purpose, a deep theoretical and experimental study of the thermal and electrical conductivity of nanocomposites has been carried out, determining the influence of both nanofiller content and sonication time. Concerning dispersion procedure, at lower contents, higher sonication times induce a decrease of thermal and electrical conductivity due to a more prevalent GNP breakage effect. However, at higher GNP contents, sonication time implies an enhancement of both electrical and thermal properties due to a prevalence of exfoliating mechanisms. Strain monitoring tests indicate that electrical sensitivity increases in an opposite way than electrical conductivity, due to a higher prevalence of tunneling mechanisms, with the 5 wt.% specimens being those with the best results. Moreover, Joule heating tests showed the dominant role of electrical mechanisms on the effectiveness of resistive heating, with the 8 wt.% GNP samples being those with the best capabilities. By taking the different functionalities into account, it can be concluded that 5 wt.% samples with 1 h sonication time are the most balanced for electrothermal applications, as shown in a radar chart.

Identifiants

pubmed: 33291391
pii: nano10122431
doi: 10.3390/nano10122431
pmc: PMC7762063
pii:
doi:

Types de publication

Journal Article

Langues

eng

Subventions

Organisme : Ministerio de Economía y Competitividad
ID : MAT2016-78825-C2-1-R
Organisme : Comunidad de Madrid
ID : ADITIMAT-CM (S2018/NMT-4411)]
Organisme : Universidad Rey Juan Carlos
ID : Ref. M2183, SMART-MULTICOAT

Références

Nanomaterials (Basel). 2019 Jun 03;9(6):
pubmed: 31163693
Nanomaterials (Basel). 2020 Apr 24;10(4):
pubmed: 32344574
Nanomaterials (Basel). 2020 Feb 29;10(3):
pubmed: 32121350
Nanotechnology. 2020 Feb 7;31(7):075702
pubmed: 31639783
ACS Appl Mater Interfaces. 2018 Sep 12;10(36):30752-30761
pubmed: 30124039

Auteurs

Xoan F Sánchez-Romate (XF)

Materials Science and Engineering Area, Escuela Superior de Ciencias Experimentales y Tecnología, Universidad Rey Juan Carlos, Calle Tulipán s/n, 28933 Móstoles, Madrid, Spain.

Alejandro Sans (A)

Materials Science and Engineering Area, Escuela Superior de Ciencias Experimentales y Tecnología, Universidad Rey Juan Carlos, Calle Tulipán s/n, 28933 Móstoles, Madrid, Spain.

Alberto Jiménez-Suárez (A)

Materials Science and Engineering Area, Escuela Superior de Ciencias Experimentales y Tecnología, Universidad Rey Juan Carlos, Calle Tulipán s/n, 28933 Móstoles, Madrid, Spain.

Mónica Campo (M)

Materials Science and Engineering Area, Escuela Superior de Ciencias Experimentales y Tecnología, Universidad Rey Juan Carlos, Calle Tulipán s/n, 28933 Móstoles, Madrid, Spain.

Alejandro Ureña (A)

Materials Science and Engineering Area, Escuela Superior de Ciencias Experimentales y Tecnología, Universidad Rey Juan Carlos, Calle Tulipán s/n, 28933 Móstoles, Madrid, Spain.

Silvia G Prolongo (SG)

Materials Science and Engineering Area, Escuela Superior de Ciencias Experimentales y Tecnología, Universidad Rey Juan Carlos, Calle Tulipán s/n, 28933 Móstoles, Madrid, Spain.

Classifications MeSH