Citation:
Moradienayat, M., Olmos, D., & González-Benito, J. (2022). Airbrushed Polysulfone (PSF)/Hydroxyapatite (HA) Nanocomposites: Effect of the Presence of Nanoparticles on Mechanical Behavior. In Polymers, 14(4), 753-773
xmlui.dri2xhtml.METS-1.0.item-contributor-funder:
Comunidad de Madrid Universidad Carlos III de Madrid
Sponsor:
The authors wish to acknowledge financial support from Fondos de Investigación de Fco.,
Javier González Benito, política de reinversión de costes generales, Universidad Carlos III de Madrid
(2012/00130/004), Acción Estratégica en Materiales Compuestos Poliméricos e Interfases, Universidad
Carlos III de Madrid (2011/00287/002) and Adquisición de un microscopio electrónico de barrido
de emisión de campo y ambiental (FEDER) (2013/00540/001), and project number 2020/00355/001
from CAM (Comunidad Autónoma de Madrid). This work has been supported by Comunidad de
Madrid (Spain) multiannual agreement with UC3M (“Excelencia para el Profesorado Universitario”-
EPUC3M04) fifth regional research plan 2016–2020.
Project:
Gobierno de España. UNC313-4E-2074 Universidad Carlos III de Madrid. 2012/00130/004 Universidad Carlos III de Madrid. 2011/00287/002 Universidad Carlos III de Madrid. 2013/00540/001 Comunidad de Madrid. EPUC3M04
Nanocomposite films of polysulfone (PSF)—hydroxyapatite (HA) were prepared with a
commercial airbrush. Structural, thermal, and mechanical characterization allows obtaining new information
to understand the role of the nanofiller–polymer matrix interphase inNanocomposite films of polysulfone (PSF)—hydroxyapatite (HA) were prepared with a
commercial airbrush. Structural, thermal, and mechanical characterization allows obtaining new information
to understand the role of the nanofiller–polymer matrix interphase in the final performance
of these materials in relation to its possible applications in the restoration of bones. Fourier-transform
infrared spectroscopy shows that there are hardly any structural changes in the polymer when adding
HA particles. From thermal analysis (differential scanning calorimetry and thermogravimetry), it can
be highlighted that the presence of HA does not significantly affect the glass transition temperature
of the PSF but decelerates its thermal degradation. All this information points out that any change in
the PSF performance because of the addition of HA particles cannot be due to specific interactions
between the filler and the polymer. Results obtained from uniaxial tensile tests indicate that the addition
of small amounts of HA particles (1% wt) leads to elastic moduli higher than the upper bound
predicted by the rule of mixtures suggesting there must be a high contribution of the interphase. A
simple model of the nanocomposite is proposed for which three contributions must be considered,
particles, interphase and matrix, in such a way that interphases arising from different particles can
interact by combining with each other thus leading to a decrease in its global contribution when
the amount of particles is high enough. The mechanical behavior can be explained considering a
balance between the contribution of the interphase and the number of particles. Finally, a particular
mechanism is proposed to explain why in certain nanocomposites relatively high concentrations of
nanoparticles may substantially increase the strain to failure.[+][-]