By Stephen J. Bonsor, Gavin Pearson
A new textbook at the sensible use of dental fabrics appropriate for undergraduate dental scholars and certified dental practitioners taking post-graduate tests in dental fabrics, restorative dentistry, operative recommendations, complex conservative dentistry, endodontics, detachable prosthodontics and implantology.
• hugely useful and evidenced-based all through - ultimate the distance among conception and perform to offer readers self assurance in deciding on and getting ready the precise fabric for the sufferer and circumstance
• Amply illustrated in complete color with over one thousand pictures, works of art and tables to obviously exhibit either fabrics and techniques
• is helping readers take pleasure in the real courting among scientific manipulation and the sensible use of dental fabrics
• Describes tips to effectively decide upon a given fabric for any scenario, tips on how to use fabrics to top impact and while and the way to not use them
• 'Good practice' and 'Warning' bins support readers keep in mind very important details
• Uniquely written through a training dentist with educational event and an instructional in biomaterials with broad medical experience
• Self-assessment questions with complete solutions is helping readers consolidate studying and get ready for exams
• Designed to enhance medical good fortune and enhance sufferer outcomes
• ideal for all undergraduate and postgraduate scholars learning dental fabric technological know-how and/or restorative dentistry
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Extra resources for A Clinical Guide to Applied Dental Materials
One of the commonly mistaken concepts is that GICs do not shrink (Kim and Hirano 1999; Bryant and Mahler 2007). Both conventional GIC and RM-GIC shrink during setting. The shrinkage from the acid–base reaction portion of the set is slower, but not necessarily less than the shrinkage of the resin portion. In RM-GICs, shrinkage occurs more rapidly during the lightcuring phase (Cheetham et al. 2014). In this case, the shrinkage from the acid–base component is minimal. When it comes to the stress of the bond to the tooth, it is likely that GICs can resist some of these forces better when a resin composite restoration is placed.
In: Brantley W, Eliades G, editors. Orthodontic materials – scientific and clinical aspects. Stuttgart: Thieme; 2001. Biological evaluation of glass-ionomer cements. J Dent Res. 1979;58: 1080–6. Acid– base aspect. J Dent Res. 1969;48:412–8. Electron probe studies. J Dent Res. 1970;49:86–92. The properties of a glass-ionomer cement. 1973;135:322–6. Glass ionomer formulations. The preparation of novel fluoroaluminosilicate glasses high in fluorine. J Dent Res. 1979;58:1607–19. Cavity sealing ability of composite resin and glass ionomer restorations: an assessment in vitro.
The coordination of metal ions. In: Sykes AG, editor. Advances in inorganic chemistry, vol. 34. San Diego: Academic Press; 1989. 195–218. The chemistry of oxyphosphate. Dent Items Interest. 1902:906–935, cited in Wilson . Fluoride release from a glass ionomer cement. Scand J Dent Res. 1977;85:503–4. Short- and long-term fluoride release from glass ionomers. Scand J Dent Res. 1991;99:241–5. Surgical cements of improved compressive strength containing stannous fluoride and polyacrylic acid.
A Clinical Guide to Applied Dental Materials by Stephen J. Bonsor, Gavin Pearson