Rheological, Viscoelastic, and Dynamic Mechanical Behavior of ZnO-Filled and MA-Modified PP/SEBS Filaments for Fused Filament Fabrication

Abstract Immiscible polyolefin–elastomer blends often exhibit limited impact resistance and unstable melt-flow behavior due to weak interfacial adhesion and inefficient stress transfer between phases. These limitations are relevant for fused filament fabrication (FFF), where filaments must withstand feeding, extrusion, deposition, and service loading. In this work, PP/SEBS (70/30 wt %) blends modified with maleic anhydride (MA) and ZnO nanoparticles were investigated to determine the influence of interphase engineering on the rheological, viscoelastic, dynamic mechanical, and FFF performance of PP/SEBS filaments. Four formulations (PP/SEBS, PP/SEBS-1%ZnO, PP/SEBS-3%MA, and PP/SEBS-1%ZnO-3%MA) were produced as 1.75 mm filaments and characterized by rotational rheology, DMA, tensile and notched Izod impact tests, SEM, and FTIR. All systems exhibited shear-thinning behavior, while the PP/SEBS-1%ZnO-3%MA formulation showed the most balanced melt response, combining reduced viscosity with adequate viscoelasticity. SEM and DMA analyses suggested improved interphase stability and more efficient viscoelastic dissipation in MA-containing systems. The PP/SEBS-1%ZnO-3%MA blend achieved the highest impact strength (46.86 ± 0.73 kJ m–2), approximately 60% higher than PP/SEBS, while maintaining tensile performance. Preliminary FFF trials demonstrated stable deposition and good dimensional reproducibility. These results demonstrate that MA/ZnO interphase engineering is an effective strategy for improving rheological stability and impact reliability in PP/SEBS filaments for FFF applications.

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Publication Details

Journal
ACS Omega
Published
2026-09-24
DOI
https://doi.org/10.1021/acsomega.6c06409
Primary Topic
Polymer crystallization and properties
Type
article
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article

Rheological, Viscoelastic, and Dynamic Mechanical Behavior of ZnO-Filled and MA-Modified PP/SEBS Filaments for Fused Filament Fabrication

Juliano Marini, André Luiz Missio, Marlon Bender Bueno Rodrigues, Patricia Oliveira Schmitt et al.
ACS Omega
Polymer crystallization and properties
article

Rheological, Viscoelastic, and Dynamic Mechanical Behavior of ZnO-Filled and MA-Modified PP/SEBS Filaments for Fused Filament Fabrication

Juliano Marini, André Luiz Missio, Marlon Bender Bueno Rodrigues, Patricia Oliveira Schmitt, Everton Granemann Souza, César Aguzzoli, Marcel Luiz Basso, Lincoln Audrew Cordeiro, Amanda Dantas de Oliveira, Chiara das Dores do Nascimento, Fabrício Celso, Eduarda Vieira Silva, André Lamounier Caixeta, Arthur Lima Capriolli
article en

Abstract

Abstract Immiscible polyolefin–elastomer blends often exhibit limited impact resistance and unstable melt-flow behavior due to weak interfacial adhesion and inefficient stress transfer between phases. These limitations are relevant for fused filament fabrication (FFF), where filaments must withstand feeding, extrusion, deposition, and service loading. In this work, PP/SEBS (70/30 wt %) blends modified with maleic anhydride (MA) and ZnO nanoparticles were investigated to determine the influence of interphase engineering on the rheological, viscoelastic, dynamic mechanical, and FFF performance of PP/SEBS filaments. Four formulations (PP/SEBS, PP/SEBS-1%ZnO, PP/SEBS-3%MA, and PP/SEBS-1%ZnO-3%MA) were produced as 1.75 mm filaments and characterized by rotational rheology, DMA, tensile and notched Izod impact tests, SEM, and FTIR. All systems exhibited shear-thinning behavior, while the PP/SEBS-1%ZnO-3%MA formulation showed the most balanced melt response, combining reduced viscosity with adequate viscoelasticity. SEM and DMA analyses suggested improved interphase stability and more efficient viscoelastic dissipation in MA-containing systems. The PP/SEBS-1%ZnO-3%MA blend achieved the highest impact strength (46.86 ± 0.73 kJ m–2), approximately 60% higher than PP/SEBS, while maintaining tensile performance. Preliminary FFF trials demonstrated stable deposition and good dimensional reproducibility. These results demonstrate that MA/ZnO interphase engineering is an effective strategy for improving rheological stability and impact reliability in PP/SEBS filaments for FFF applications.

ACS Omega
Universidade Católica de Pelotas (BR), Universidade Federal do Rio Grande do Sul (BR), Universidade Federal de Pelotas (BR), Universidade Federal de São Carlos (BR), Instituto Federal de Educação, Ciência e Tecnologia do Rio Grande do Sul (BR), Universidade de Caxias do Sul (BR), Instituto Federal Sul-rio-grandense (BR)
Openalex Percentile: Top 24%
Polymer crystallization and properties
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