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Dental Materials
Volume 23, Issue 11
, Pages 1405-1411
, November 2007
Dentinal fluid flow and cuspal displacement in response to resin composite restorative procedures
References
- . Clinical challenges and the relevance of materials testing for posterior composite restorations. Dent Mater. 2005;21:9–20
- . Conversion-dependent shrinkage stress and strain in dental resins and composites. Dent Mater. 2005;21:56–67
- . Cuspal movement and microleakage in premolar teeth restored with a packable composite cured in bulk or in increments. J Dent. 2003;31:437–444
- . In vitro cuspal deflection and microleakage of maxillary premolars restored with novel low-shrink dental composites. Dent Mater. 2005;21:324–335
- . Composite resin restoration and postoperative sensitivity: clinical follow-up in an undergraduate program. J Dent. 2001;29:7–13
- . Marginal gap formation of light-activated restorative materials: effects of immediate setting shrinkage and bond strength. Dent Mater. 2002;18:203–210
- . The mechanical properties of human dentin: A critical review and re-evaluation of the dental literature. Crit Rev Oral Biol Med. 2003;14:13–29
- . 3D-Finite element analyses of cusp movements in a human upper premolar, restored with adhesive resin-based composites. J Biomech. 2001;34:1269–1277
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- . Fracture-toughening mechanisms responsible for differences in work to fracture of hydrated and dehydrated dentin. J Biomech. 2003;36:229–237
- . Mapping of tooth deformation caused by moisture change using Moire interferometry. Dent Mater. 2003;19:159–166
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- . Changes in dimensions and weight of human dentin after different drying procedures and during subsequent rehydration. Arch Oral Biol. 1993;38:97–99
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- . Fluid shifts across human dentin in vitro in response to hydrodynamic stimuli. Arch Oral Biol. 1996;41:1065–1072
- Fluid movement across the resin–dentin interface during and after bonding. J Dent Res. 2004;83:843–848
- . Outward fluid flow reduces inward diffusion of bacterial lipopolysaccharide across intact and demineralised dentin. Arch Oral Biol. 2005;50:707–713
- . Dentin permeability. In: Spangberg LSW editors. Experimental endodontics. Boca Raton: CRS Press; 1990;p. 19–49
- . The effect of normal occlusal forces on fluid movement through human dentin in vitro. Arch Oral Biol. 2000;45:1033–1041
- . Composite restorative materials. In: Craig RG, Powers JM editor. Restorative dental materials. St. Louis: Mosby Inc.; 2002;p. 232–253
- . Volume of the internal gap formed under composite restorations in vitro. J Dent. 1997;25:305–312
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- . Dentinal fluid movement associated with loading of restorations. J Dent Res. 1991;70:975–978
- . Cusp movement during polymerization using experimental low-shrinkage composites. J Dent Res. 2005;84:(Abstr. No. 622)
- . Biological risks of resin-based materials to the dentin–pulp complex. Crit Rev Oral Biol Med. 2004;15:47–60
PII: S0109-5641(06)00326-5
doi: 10.1016/j.dental.2006.11.029
© 2006 Academy of Dental Materials. Published by Elsevier Inc. All rights reserved.
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Dental Materials
Volume 23, Issue 11
, Pages 1405-1411
, November 2007
