Integrating Structural, Dielectric and Mechanical Properties to Evaluate the Performance of NR/SBR/GTR/SiO2 Compounds
Abstract
1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Devulcanization of GTR
2.3. Preparation of Rubber Compounds
2.4. Mechanical Analysis
2.5. FTIR Analysis
2.6. Thermal Analysis
2.7. Scanning Electron Microscopy
2.8. Dynamic Electric Analysis
3. Results and Discussion
3.1. Mechanical and Physical Characterization
3.2. Structural Characterization by FTIR-ATR
3.3. Thermal Characterization
3.4. Sanning Electron Micrographs (SEMs)
3.5. Dielectric Characterization
3.5.1. Electric Modulus Analysis (M′ and M″)
3.5.2. Real and Imaginary Permittivity (ε′ and ε″)
3.5.3. Electrical Conductivity
AC and DC Conductivity Behavior
Arrhenius Analysis and Activation Energy
Conduction Mechanism
3.5.4. Sublinear Exponent (n)
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Conflicts of Interest
References
- Formela, K. Waste tire rubber-based materials: Processing, performance properties and development strategies. Adv. Ind. Eng. Polym. Res. 2022, 5, 234–247. [Google Scholar] [CrossRef]
- Klajn, K.; Gozdek, T.; Bieliński, D.M.; Siciński, M.; Zarzecka-Napierała, M.; Pędzich, Z. SBR Vulcanizates Filled with Modified Ground Tire Rubber. Materials 2021, 14, 3991. [Google Scholar] [CrossRef]
- Dierkes, W.K.; Ghosh, R.; Talma, A.G.; Blume, A. Facing the Challenge of Devulcanization of Silica-containing Tire Rubber. In Proceedings of the ACS Spring Technical Meeting 2023, Warrensville Heights, OH, USA, 25–27 April 2023. [Google Scholar]
- Colom, X.; Marín-Genescà, M.; Mujal, R.; Formela, K.; Cañavate, J. Structural and physico-mechanical properties of natural rubber/GTR composites devulcanized by microwaves: Influence of GTR source and irradiation time. J. Compos. Mater. 2018, 52, 3099–3108. [Google Scholar] [CrossRef]
- Hejna, A.; Zedler, Ł.; Przybysz-Romatowska, M.; Cañavate, J.; Colom, X.; Formela, K. Reclaimed Rubber/Poly(ε-caprolactone) Blends: Structure, Mechanical, and Thermal Properties. Polymers 2020, 12, 1204. [Google Scholar] [CrossRef] [PubMed]
- Enganati, S.K.; Addiego, F.; Fernandes, J.P.C.; Koutsawa, Y.; Zielinski, B.; Ruch, D.; Mertz, G. Multiscale characterization of the interfacial region in flexible rubber composites: Initial structure and evolution upon thermal treatment. Polym. Test. 2021, 98, 107203. [Google Scholar] [CrossRef]
- Li, G.; Stubblefield, A.M.; Garrick, G.; Eggers, J.; Abadie, C.; Huang, B. Development of waste tire modified concrete. Cem. Concr. Res. 2004, 34, 2283–2289. [Google Scholar] [CrossRef]
- Colom, X.; Sans, J.; de Bruijn, F.; Carrillo, F.; Cañavate, J. Structural, thermal and mechanical assessment of green compounds with natural rubber. Macromol 2024, 4, 566–581. [Google Scholar] [CrossRef]
- Zedler, Ł.; Colom, X.; Cañavate, J.; Formela, K. GTR/NBR/silica composites performance properties as a function of curing system: Sulfur versus peroxides. Materials 2021, 14, 5345. [Google Scholar] [CrossRef]
- ASTM D2084; Standard Test Method for Rubber Property—Vulcanization Using Oscillating Disk Cure Meter. ASTM International: West Conshohocken, PA, USA, 2019.
- ASTM D412; Standard Test Methods for Vulcanized Rubber and Thermoplastic Elastomers—Tension. ASTM International: West Conshohocken, PA, USA, 2008.
- Gent, A.N. Engineering with Rubber: How to Design Rubber Components, 3rd ed.; Hanser Publishers: Munich, Germany, 2012. [Google Scholar]
- Brown, M.E. Introduction to Thermal Analysis: Techniques and Applications, 2nd ed.; Springer: Dordrecht, The Netherlands, 2001. [Google Scholar]
- Jonscher, A.K. Dielectric Relaxation in Solids; Chelsea Dielectrics Press: London, UK, 1983. [Google Scholar]
- Colom, X.; Marín, M.; Saeb, M.R.; Formela, K.; Cañavate, J. Recycling devulcanized EPDM to improve engineering properties of SBR rubber compounds. Resour. Conserv. Recycl. Adv. 2024, 23, 200227. [Google Scholar] [CrossRef]
- Kim, K.-H.; Lee, J.-Y.; Choi, J.-M.; Kim, H.-J.; Seo, B.; Kim, B.-S.; Kwag, G.-H.; Paik, H.-J.; Kim, W. Synthesis of Ionic Elastomer Based on Styrene-Butadiene Rubber Containing Methacrylic Acid. Elastomers Compos. 2013, 48, 46–54. [Google Scholar] [CrossRef]
- Hirayama, D.; Saron, C. Chemical Modifications in Styrene–Butadiene Rubber after Microwave Devulcanization. Ind. Eng. Chem. Res. 2012, 51, 3975–3980. [Google Scholar] [CrossRef]
- Cañavate, J.; Pagés, P.; Saurina, J.; Colom, X.; Carrasco, F. Determination of small interactions in polymer composites by means of FTIR and DSC. Polym. Bull. 2000, 44, 293–300. [Google Scholar] [CrossRef]
- Sakrit, G.J.H.; Soumyajit, G.; Dipankar, M.; Sven, W.; Amit, D.; Debapriya, D. Cradle-to-cradle approach to waste tyres and development of silica based green tyre composites. Resour. Conserv. Recycl. 2020, 154, 104629. [Google Scholar]
- Colom, X.; Saeb, M.R.; Cañavate, J. Microstructural phenomena in ground tire rubber (GTR) devulcanized via combined thermochemomechanical and microwave processes monitored by FTIR and DTGA assisted by other techniques. Express Polym. Lett. 2024, 18, 950–961. [Google Scholar] [CrossRef]
- Najam, M.; Hussain, M.; Ali, Z.; Maafa, I.M.; Akhter, P.; Majeed, K.; Ahmed, A.; Shehzad, N. Influence of silica materials on synthesis of elastomer nanocomposites: A review. J. Elastomers Plast. 2019, 52, 747–771. [Google Scholar] [CrossRef]
- Macdonald, J.R. Impedance Spectroscopy: Emphasizing Solid Materials and Systems; Wiley: New York, NY, USA, 1987. [Google Scholar]
- Barsoukov, E.; Macdonald, J.R. Impedance Spectroscopy: Theory, Experiment, and Applications, 2nd ed.; Wiley: Hoboken, NJ, USA, 2005. [Google Scholar]
- Xia, X.; Zhong, Z.; Weng, G.J. Maxwell−Wagner−Sillars mechanism in the frequency dependence of electrical conductivity and dielectric permittivity of graphene-polymer nanocomposites. Mech. Mater. 2017, 109, 42–50. [Google Scholar] [CrossRef]
- Marín-Genescà, M.; García-Amorós, J.; Mudarra, M.; Vidal, L.M.; Cañavate, F.X.; Colom, X. Insights into the Structural and Dielectric Behavior of Composites Produced from EPDM Waste Processed through a Devulcanization Method and SBR. ACS Omega 2023, 8, 12830–12841. [Google Scholar] [CrossRef] [PubMed]
- Marín-Genescà, M.; García-Amorós, J.; Mujal-Rosas, R.; Massagués, L.; Colom, X. Study and characterization of the dielectric behavior of low linear density polyethylene composites mixed with ground tire rubber particles. Polymers 2020, 12, 1075. [Google Scholar] [CrossRef]
- Sillars, P. The properties of a dielectric containing semiconducting particles of various shapes. J. Inst. Electr. Eng. 1937, 80, 378–394. [Google Scholar]
- Dang, Z.M.; Yuan, J.K.; Zha, J.W.; Zhou, T.; Li, S.T.; Hu, G.H. Fundamentals, processes and applications of high-permittivity polymer–matrix composites. Prog. Mater. Sci. 2012, 57, 660–723. [Google Scholar] [CrossRef]
- Jonscher, A.K. The universal dielectric response. Nature 1977, 267, 673–679. [Google Scholar] [CrossRef]
- Dyre, J.C. The random free-energy barrier model for AC conduction in disordered solids. J. Appl. Phys. 1988, 64, 2456–2468. [Google Scholar] [CrossRef]
- Elliott, S.R.A.c. conduction in amorphous chalcogenide and pnictide semiconductors. Adv. Phys. 1987, 36, 135–217. [Google Scholar] [CrossRef]
- Long, A.R. Frequency-dependent loss in amorphous semiconductors. Adv. Phys. 1982, 31, 553–637. [Google Scholar] [CrossRef]
- Ismail, H.; Nordin, R.; Noor, A.M. Cure characteristics, tensile properties and swelling behaviour of recycled rubber powder-filled natural rubber compounds. Polym. Test. 2002, 21, 565–569. [Google Scholar] [CrossRef]
- Almond, D.P.; West, A.R. Mobile ion concentrations and hopping rates from a.c. conductivity measurements. Solid State Ion. 1983, 9–10, 277–282. [Google Scholar] [CrossRef]
- Funke, K. Jump relaxation in solid electrolytes. Prog. Solid State Chem. 1993, 22, 111–195. [Google Scholar] [CrossRef]
- Sidebottom, D.L. Universal approach for scaling the ac conductivity in ionic glasses. Phys. Rev. Lett. 1999, 82, 3653–3656. [Google Scholar] [CrossRef]
- Thomas, S.; Stephen, R. Rubber nanocomposites: Preparation, properties, and applications. Rubber Chem. Technol. 2010, 83, 263–288. [Google Scholar]
- Yan, J.; Lan, T.; Zu, L.; Dong, S.; Liu, S.; Hou, B.; Liu, J.; Bao, X.; Zhang, P.; Xie, J. Performance and Application Research of Waste Tire Rubber in Novel Composite Materials. ChemistrySelect 2026, 11, e06640. [Google Scholar] [CrossRef]
- Colom, X.; Cañavate, J.; Carrillo, F.; Velasco, J.I.; Pagès, P.; Mujal, R.; Nogués, F. Structural and mechanical studies on modified reused tyres composites. Eur. Polym. J. 2006, 42, 2369–2378. [Google Scholar] [CrossRef]
- Adhikari, B.; De, D.; Maiti, S. Reclamation and recycling of waste rubber. Prog. Polym. Sci. 2000, 25, 909–948. [Google Scholar] [CrossRef]









| Sample Code | NR | SBR | GTR | SiO2 | CB | S | ZnO | HSt | TBBS | TMTD |
|---|---|---|---|---|---|---|---|---|---|---|
| 0GTRNRSBR | 50 | 50 | 0 | 30 | 30 | 2 | 5 | 3 | 1 | 0.25 |
| 10GTRNRSBR | 48 | 46 | 10 | 29 | 27 | 2 | 5 | 3 | 1 | 0.25 |
| 20GTRNRSBR | 46 | 41 | 20 | 28 | 24 | 2 | 5 | 3 | 1 | 0.25 |
| 40GTRNRSBR | 42 | 34 | 40 | 26 | 18 | 2 | 5 | 3 | 1 | 0.25 |
| 50GTRNRSBR | 40 | 30 | 50 | 25 | 15 | 2 | 5 | 3 | 1 | 0.25 |
| Sample | Young Modulus (MPa) | Tensile Strength (MPa) | Elongation at Break | Toughness (J) | Hardness (Shore A) | Density (g/cm3) | Swelling Degree (%) |
|---|---|---|---|---|---|---|---|
| 0GTRNRSBR | 2.01 ± 0.26 | 18.7 ± 1.65 | 1051 ± 113 | 52.3 ± 3.14 | 49.2 ± 0.6 | 1.047 ± 0.02 | 233 ± 13 |
| 10GTRNRSBR | 2.18 ± 0.13 | 13.4 ± 1.21 | 712 ± 61 | 35.0 ± 2.29 | 48.7 ± 0.3 | 1.039 ± 0.01 | 228 ± 16 |
| 20GTRNRSBR | 1.93 ± 0.21 | 12.8 ± 1.01 | 759 ± 69 | 29.1 ± 2.01 | 53.5 ± 1.1 | 1.051 ± 0.08 | 231 ± 13 |
| 40GTRNRSBR | 2.21 ± 0.19 | 12.5 ± 0.93 | 703 ± 80 | 27.6 ± 1.76 | 58.6 ± 1.9 | 1.046 ± 0.06 | 239 ± 14 |
| 50GTRNRSBR | 2.38 ± 0.10 | 11.9 ± 0.42 | 689 ± 56 | 28.7 ± 1.98 | 56.9 ± 2.1 | 1.054 ± 0.05 | 246 ± 17 |
| Wavenumber (cm−1) | Assignments | Component |
|---|---|---|
| 1537 | Zn carboxylic salts | Stearic acid |
| 1463 | -CH2-stretching | Elastomeric compound |
| 1374 | -CH3 symmetric bend | Elastomeric compound |
| 1063 | Si-O | Oxide silicon |
| 1018 | -C-C- | Carbon black |
| 960 | Trans group–CH=CH– | Elastomeric compound |
| 797 | -C=C-H our of plane | Elastomeric compound |
| 694 | CH of the aromatic ring of SBR | Elastomeric compound |
| 453 | S-S bonds | Elastomeric compound |
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Mujal-Rosas, R.; Mudarra-Lopez, M.; Marín-Genescà, M.; Arias, M.L.; Colom, X. Integrating Structural, Dielectric and Mechanical Properties to Evaluate the Performance of NR/SBR/GTR/SiO2 Compounds. Polymers 2026, 18, 1448. https://doi.org/10.3390/polym18121448
Mujal-Rosas R, Mudarra-Lopez M, Marín-Genescà M, Arias ML, Colom X. Integrating Structural, Dielectric and Mechanical Properties to Evaluate the Performance of NR/SBR/GTR/SiO2 Compounds. Polymers. 2026; 18(12):1448. https://doi.org/10.3390/polym18121448
Chicago/Turabian StyleMujal-Rosas, Ramon, Miguel Mudarra-Lopez, Marc Marín-Genescà, Manuel Lis Arias, and Xavier Colom. 2026. "Integrating Structural, Dielectric and Mechanical Properties to Evaluate the Performance of NR/SBR/GTR/SiO2 Compounds" Polymers 18, no. 12: 1448. https://doi.org/10.3390/polym18121448
APA StyleMujal-Rosas, R., Mudarra-Lopez, M., Marín-Genescà, M., Arias, M. L., & Colom, X. (2026). Integrating Structural, Dielectric and Mechanical Properties to Evaluate the Performance of NR/SBR/GTR/SiO2 Compounds. Polymers, 18(12), 1448. https://doi.org/10.3390/polym18121448

