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3D Printing of CNT- and YSZ-Added Dental Resin-Based Composites by Digital Light Processing and Their Mechanical Properties. | LitMetric

AI Article Synopsis

  • - The study focused on 3D printing dental resin-based composites (DRCs) with ceramic additives using digital light processing (DLP), aiming to enhance their mechanical strength and stability.
  • - It tested two ceramic additives, carbon nanotubes (CNT) and yttria-stabilized zirconia (YSZ), to improve the DRCs' properties under environmental stress commonly faced in dental applications.
  • - Results showed that DRCs with 0.5 wt.% YSZ had the best hardness (19.8 HRB) and flexural strength (50.6 MPa), while maintaining good oral rinsing stability, suggesting potential for improved dental materials.

Article Abstract

This study demonstrates the successful 3D printing of dental resin-based composites (DRCs) containing ceramic particles using the digital light processing (DLP) technique. The mechanical properties and oral rinsing stability of the printed composites were evaluated. DRCs have been extensively studied for restorative and prosthetic dentistry due to their clinical performance and aesthetic quality. They are often subjected to periodic environmental stress, and thus can easily undergo undesirable premature failure. Here, we investigated the effects of two different high-strength and biocompatible ceramic additives, carbon nanotube (CNT) and yttria-stabilized zirconia (YSZ), on the mechanical properties and oral rinsing stabilities of DRCs. Dental resin matrices containing different wt.% of CNT or YSZ were printed using the DLP technique after analyzing the rheological behavior of slurries. Mechanical properties such as Rockwell hardness and flexural strength, as well as the oral rinsing stability of the 3D-printed composites, were systematically investigated. The results indicated that a DRC with 0.5 wt.% YSZ exhibits the highest hardness of 19.8 ± 0.6 HRB and a flexural strength flexural strength of 50.6 ± 6 MPa, as well as reasonable oral rinsing steadiness. This study provides a fundamental perspective for designing advanced dental materials containing biocompatible ceramic particles.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10004184PMC
http://dx.doi.org/10.3390/ma16051873DOI Listing

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