dc.contributor | Elías Zúñiga, Alex | |
dc.contributor | Escuela de Ingeniería y Ciencias | |
dc.contributor | Rodríguez Salinas, Juan José | |
dc.contributor | Martínez Romero, Oscar | |
dc.contributor | Olvera Trejo, Daniel | |
dc.contributor | Del Ángel Sánchez, Karina | |
dc.contributor | Campus Monterrey | |
dc.contributor | tolmquevedo/mscuervo | |
dc.creator | ELIAS ZUÑIGA, ALEX; 19150 | |
dc.creator | Aguirre Corona, Renato Wenceslao | |
dc.date.accessioned | 2023-06-21T22:04:19Z | |
dc.date.accessioned | 2023-07-19T19:20:27Z | |
dc.date.available | 2023-06-21T22:04:19Z | |
dc.date.available | 2023-07-19T19:20:27Z | |
dc.date.created | 2023-06-21T22:04:19Z | |
dc.date.issued | 2022-06-14 | |
dc.identifier | Aguirre Corona, R. W. (2022). Development of a piezoelectric smart device with fiber meshes elaborated by Forcespinning™ [Unpublished master's thesis]. Instituto Tecnológico y de Estudios Superiores de Monterrey. Recuperado de: https://hdl.handle.net/11285/650928 | |
dc.identifier | https://hdl.handle.net/11285/650928 | |
dc.identifier | https://orcid.org /0000-0003-0987-0304 | |
dc.identifier | 1078232 | |
dc.identifier.uri | https://repositorioslatinoamericanos.uchile.cl/handle/2250/7715971 | |
dc.description.abstract | A novel approach was used in this thesis project. BaTiO3 nanoparticles named as BTO
nanoparticles were synthesized in the laboratory and commercial graphene named as G
are used as fillers in Polyvinylidene Fluoride named as PVDF for the formation of
polymeric meshes for the development of piezoelectric devices. Piezoelectric fiber
meshes from different materials as: PVDF, BTO/PVDF, G/PVDF, BTO/G/PVDF are
done varying the concentration of the fillers to evaluate the materials. The fiber meshes
were fabricated in the Forcespinning™ technique and were characterized using different
techniques.
Scanning Electron Microscopy was used to obtain the morphology and chemical
composition by Energy Dispersive Spectroscopy(EDS), Fourier Transformed Infrared
Spectroscopy (FTIR) was done for the identification of the phase composition of the
material, Thermogravimetric Analysis allows the obtention of the maximum temperature
of degradation to identify the materials with more thermal stability and X-ray Diffraction
confirmed us the presence of the planes of the β phase in the fiber meshes and in the
BTO the planes that are in concordance to the crystallographic card 96-150-7758. For
the characterization of the piezoelectric devices an Impact tester was used with a
multimeter to record the voltage generated by all the samples.
Where the mean maximum voltage generated for the A2 device is 35.77 Voc, the best
device with only BTO as filler, while A3, A4, A6 and A7 samples are samples where G is
used with a bad performance. The devices developed can be used for different
applications as sensors or nanogenerators, showing a promising performance.
Piezoelectric devices are of interest by the generation of voltage from sources that were
not used before, therefore producing energy from sustainable alternatives, offering an
option for remote self-powered sensors. | |
dc.language | eng | |
dc.publisher | Instituto Tecnológico y de Estudios Superiores de Monterrey | |
dc.relation | publishedVersion | |
dc.relation | REPOSITORIO NACIONAL CONACYT | |
dc.relation | CONACYT | |
dc.rights | http://creativecommons.org/licenses/by-nc-nd/4.0 | |
dc.rights | openAccess | |
dc.title | Development of a piezoelectric smart device with fiber meshes elaborated by Forcespinning™ | |
dc.type | Tesis de Maestría / master Thesis | |