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Original Article

A step toward bio-inspired dental composites

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Article: 2150625 | Received 17 Oct 2022, Accepted 17 Nov 2022, Published online: 19 Jan 2023

References

  • Coldea A, Swain MV, Thiel N. Mechanical properties of polymer-infiltrated-ceramic-network materials. Dent Mater. 2013;29(4):419–426.
  • Nguyen J, Ruse D, Phan A, et al. High-temperature-pressure polymerized resin-infiltrated ceramic networks. J Dent Res. 2014;93(1):62–67.
  • Belli R, Zorzin JI, Petschelt A, et al. Crack growth behavior of a biomedical polymer-ceramic interpenetrating scaffold composite in the subcritical regimen. Eng Frac Mech. 2020;231:107014.
  • Lassila L, Säilynoja E, Prinssi R, et al. Characterization of a new fiber-reinforced flowable composite. Odontology. 2019;107(3):342–352.
  • Tiu J, Belli R, Lohbauer U. Rising R-curves in particulate/fiber-reinforced resin composite layered systems. J Mech Behav Biomed Mater. 2020;103:103537.
  • Wendler M, Belli R, Schachtner M, et al. Resistance curves of short-fiber reinforced methacrylate-based biomedical composites. Eng Frac Mech. 2018;190:146–158.
  • Bechtle S, Habelitz S, Klocke A, et al. The fracture behaviour of dental enamel. Biomaterials. 2010;31(2):375–384.
  • Belli R, Wendler M, Cicconi MR, et al. Fracture anisotropy in texturized lithium disilicate glass-ceramics. J Non-Cryst Solids. 2018;481:457–469.
  • Kirsten J, Belli R, Wendler M, et al. Crack growth rates in lithium disilicates with bulk (mis) alignment of the Li2Si2O5 phase in the [001] direction. J Non-Cryst Solids. 2020;532:119877.
  • Rice J. Elastic fracture mechanics concepts for interfacial cracks. J Appl Mech. 1988;55(1):98–103.
  • Zimmermann EA, Launey ME, Ritchie RO. The significance of crack-resistance curves to the mixed-mode fracture toughness of human cortical bone. Biomaterials. 2010;31(20):5297–5305.
  • Barthelat F, Espinosa H. An experimental investigation of deformation and fracture of nacre–mother of pearl. Exp Mech. 2007;47(3):311–324.
  • Bekah S, Rabiei R, Barthelat F. The micromechanics of biological and biomimetic staggered composites. J Bionic Eng. 2012;9(4):446–456.
  • Mayer G. Rigid biological systems as models for synthetic composites. Science. 2005;310(5751):1144–1147.
  • Barthelat F, Li CM, Comi C, et al. Mechanical properties of nacre constituents and their impact on mechanical performance. J Mater Res. 2006;21(8):1977–1986.
  • Gao HL, Chen SM, Mao LB, et al. Mass production of bulk artificial nacre with excellent mechanical properties. Nat Commun. 2017;8(1):1–8.
  • Jia Z, Wang L. 3D printing of biomimetic composites with improved fracture toughness. Acta Mater. 2019;173:61–73.
  • Munch E, Launey ME, Alsem DH, et al. Tough, bio-inspired hybrid materials. Science. 2008;322(5907):1516–1520.
  • Ekiz OO, Dericioglu AF, Kakisawa H. An efficient hybrid conventional method to fabricate nacre-like bulk nano-laminar composites. Mater Sci Eng C. 2009;29(6):2050–2054.
  • ASTM International. 2013. ASTM, E1820-13: standard test method for measurement of fracture toughness. West Conshohocken (PA): ASTM International. Available from: www.astm.org
  • De Souza JA, Goutianos S, Skovgaard M, et al. Fracture resistance curves and toughening mechanisms in polymer based dental composites. J Mech Behav Biomed Mater. 2011;4(4):558–571.
  • Shah M, Ferracane J, Kruzic J. R-curve behavior and micromechanisms of fracture in resin based dental restorative composites. J Mech Behav Biomed Mater. 2009;2(5):502–511.
  • Vallittu P, Matinlinna J. A clinical guide to fibre reinforced composites (FRCs) in dentistry. 1st ed. Woodhead publishing series in biomaterials. Kent: Elsevier Science & Technology; 2017. Chapter 2, Types of FRC’s used in dentistry; p. 11–34.
  • Kumins CA, Roteman J. Effect of solid polymer interaction on transition temperature and diffusion coefficients. J Polym Sci A1. 1963;1(1):527–540.