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(Reference retrieved automatically from Web of Science through information on FAPESP grant and its corresponding number as mentioned in the publication by the authors.)

Tailoring the graphene oxide chemical structure and morphology as a key to polypropylene nanocomposite performance

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Author(s):
Garcia, Pamela S. [1] ; Oliveira, Yuri D. C. [1] ; Valim, Fernanda C. F. [1] ; Kotsilkova, Rumiana [2] ; Ivanov, Evgeni [2, 3] ; Donato, Ricardo K. [4] ; Fechine, Guilhermino J. M. [1] ; Andrade, Ricardo J. E. [1]
Total Authors: 8
Affiliation:
[1] Univ Prebiteriana Mackenzie, Graphene & Nanomat Res Ctr, MackGraphe, Sao Paulo - Brazil
[2] Bulgarian Acad Sci, Inst Mech, Open Lab Expt Micro & Nano Mech, Sofia - Bulgaria
[3] NanoTech Lab Ltd, Res & Dev Nanomat & Nanotechnol, Sofia - Bulgaria
[4] Czech Acad Sci, Inst Macromol Chem, Prague - Czech Republic
Total Affiliations: 4
Document type: Journal article
Source: Polymer Composites; v. 42, n. 11 SEP 2021.
Web of Science Citations: 0
Abstract

In this work, we designed and studied two synthetic routes, based on modified Hummers method, to obtain graphene oxide (GO), and investigated their influence on the performance of polypropylene (PP)/GO nanocomposites. The two synthetic routes differed in the application condition of the oxidizing agent, potassium permanganate (KMnO4), which was added either as a powder (GO-P) or as a water solution (GO-S). This apparently subtle synthetic change yielded GOs with different degrees of oxidation and particle sizes, where GO-P presented a higher oxidation degree and smaller particles. The different GOs were then melt-blended with PP and the correlation between their different chemical/morphological structures and the nanocomposites' thermomechanical/rheological properties were evaluated. The milder oxidation process suffered by GO-S, and consequent less hydrophilic character, yielded a PP/GO-S nanocomposite with improved performance as the consequence of a better matrix/filler chemical affinity, mainly in compositions with lower GO-S contents. The thermal stability was increased by more than 10 degrees C when 0.1 wt% GO-S was inserted into PP. When compared to the composition with 0.1 wt% GO-P, the increase was 13 degrees C. Reinforcing effects were also observed in that sample (with 0.1 wt% GO-S), which exhibited the highest storage modulus and complex viscosity. These results suggest that tailoring the GO's oxidation degree and morphology is a key point to obtain an ideal interfacial interaction between phases. (AU)

FAPESP's process: 16/12400-1 - Manufacturing and characterization of polypropylene/graphene oxide nanocomposites
Grantee:Yuri Durighetto Coelho de Oliveira
Support Opportunities: Scholarships in Brazil - Scientific Initiation
FAPESP's process: 12/50259-8 - Graphene: photonics and opto-electronics: UPM-NUS collaboration
Grantee:Antonio Helio de Castro Neto
Support Opportunities: Research Projects - SPEC Program
FAPESP's process: 18/10910-8 - Photodegradation and photostabilization of polymer nanocomposites based on two-dimensional fillers
Grantee:Guilhermino José Macêdo Fechine
Support Opportunities: Regular Research Grants