A latest examine printed in Polymers detailed the event of polymer matrix nanocomposites incorporating copper nanoparticles (Cu-NPs) by way of UV-photopolymerization additive manufacturing. The analysis primarily targeted on assessing the influence of Cu-NPs on the mechanical properties of those nanocomposites.
Picture Credit score: Kateryna Kon/Shutterstock.com
Background
Nanocomposites have gained vital consideration for his or her superior mechanical, thermal, and electrical properties in comparison with conventional supplies. Integrating nanoparticles into polymer matrices can considerably improve efficiency, making these supplies superb for aerospace, automotive, and biomedical functions.
Copper nanoparticles are recognized for his or her glorious electrical conductivity and antimicrobial properties, making them enticing for photopolymer resins. Nonetheless, challenges resembling particle agglomeration and elevated viscosity should be addressed to completely leverage these advantages.
The Present Examine
This examine systematically fabricated and characterised polymer matrix nanocomposites. The photopolymer resin was combined with various concentrations of Cu-NPs (0.0 %, 0.5 %, and 1.0 % by weight) to evaluate the influence of particle loading on the fabric properties.
Scanning electron microscopy (SEM) was used to investigate nanoparticle dimension and distribution, revealing a imply particle dimension of roughly 72.9 nm. The addition of Cu-NPs elevated the viscosity of the resin, with values starting from 0.4 Pa.s for the neat resin to 1.8 Pa.s for the 1.0 % Cu-NP formulation.
Tensile exams had been carried out based on ASTM requirements to guage the mechanical properties of the nanocomposites. The samples, ready in a dog-bone form, had been subjected to 10 minutes of UV curing. Weibull statistics had been employed to evaluate the variability in tensile power throughout totally different formulations, offering insights into the reliability and consistency of the supplies. Moreover, shrinkage exams had been carried out to guage dimensional stability throughout curing, with measurements taken within the x, y, and z instructions.
Outcomes and Dialogue
The tensile check outcomes revealed that incorporating Cu-NPs brought about a lower in tensile power, probably as a result of nanoparticles performing as stress concentrators throughout the polymer matrix. The neat resin demonstrated larger tensile power in comparison with the Cu-NP formulations. Nonetheless, UV irradiation enhanced the power of the nanocomposites, indicating that the curing course of is essential in figuring out the ultimate mechanical properties.
Weibull evaluation revealed excessive modulus values for each the neat resin and the nanocomposite formulations, indicating low variability in tensile power. The modulus values had been recorded at 34.8 for the neat resin and 30.9 for the 1.0 % Cu-NPs formulation, suggesting constant materials efficiency. The low variability is especially advantageous for manufacturing functions, because it means that the supplies might be produced with predictable efficiency traits.
The examine additionally recognized particle agglomeration as a major situation in the course of the manufacturing course of. Cu-NPs tended to precipitate to the underside of the printing tank, resulting in agglomerated spots that might provoke fractures within the remaining printed elements.
To handle this problem, the authors steered a number of enhancements to the manufacturing course of, together with utilizing dispersion emulsifiers to maintain the nanoparticles suspended and improve their interplay with the resin. Moreover, they really useful pre-processing methods like chemical remedy or heating of the Cu-NPs to enhance adhesion to the resin and scale back agglomeration.
Shrinkage exams revealed that samples containing Cu-NPs skilled much less shrinkage in comparison with the neat resin, which is advantageous for sustaining dimensional accuracy throughout curing. The outcomes indicated that curing time, whether or not 5 or 10 minutes, had minimal influence on the ultimate dimensions, suggesting that the preliminary 5 minutes of curing are adequate for attaining dimensional stability.
Conclusion
This analysis efficiently demonstrated the fabrication of polymer matrix nanocomposites with copper nanoparticles by way of UV-photopolymerization additive manufacturing. Whereas the inclusion of Cu-NPs lowered tensile power, the UV curing course of considerably enhanced the mechanical properties of the nanocomposites.
The examine highlighted challenges associated to particle agglomeration and elevated viscosity, proposing options to enhance the manufacturing course of. These findings emphasize the significance of optimizing processing methods to realize superior nanocomposite supplies, paving the best way for future functions throughout varied industries.
This analysis contributes invaluable insights into the potential of nanocomposites to revolutionize materials efficiency in additive manufacturing.
Journal Reference
Gil L.D., et al. (2024). Polymer Matrix Nanocomposites Fabricated with Copper Nanoparticles and Photopolymer Resin by way of Vat Photopolymerization Additive Manufacturing. Polymers. DOI: 10.3390/polym16172434, https://www.mdpi.com/2073-4360/16/17/2434