Compositional, structural, and phase changes inin vitro laser-irradiated human tooth enamel
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[1] S. Kantola. Laser-induced effects on tooth structure. VII. X-ray diffraction study of dentine exposed to a CO2 laser. , 1973, Acta odontologica Scandinavica.
[2] B. O. Fowler,et al. Lattice defects in nonstoichiometric calcium hydroxylapatites. A chemical approach , 1982 .
[3] R F Sognnaes,et al. Laser inhibition of dental caries suggested by first tests in vivo. , 1972, Journal of the American Dental Association.
[4] K. Ooya,et al. Potential of yttrium-aluminum-garnet laser in caries prevention. , 1974, Journal of oral pathology.
[5] Ralph H. Stern,et al. Dentistry and the Laser , 1971 .
[6] R F Sognnaes,et al. Laser effect on in vitro enamel permeability and solubility. , 1966, Journal of the American Dental Association.
[7] R R Lobene,et al. Interaction of Carbon Dioxide Laser Radiation with Enamel and Dentin , 1968, Journal of dental research.
[8] B. O. Fowler. Infrared studies of apatites. II. Preparation of normal and isotopically substituted calcium, strontium, and barium hydroxyapatites and spectra-structure-composition correlations , 1974 .
[9] Robert F. Boehm,et al. Thermal Stress Effects and Surface Cracking Associated With Laser Use on Human Teeth , 1977 .
[10] R. H. Stern. Laser beam effect on dental hard tissues , 1964 .
[11] L. Goldman,et al. Impact of the Laser on Dental Caries , 1964, Nature.
[12] H. Yamamoto,et al. Prevention of Dental Caries by Acousto-optically Q-switched ND:YAG Laser Irradiation , 1980, Journal of dental research.
[13] M. Dallemagne,et al. The main mineral constituent of bone and teeth. , 1961, Archives of oral biology.
[14] J. Elliott,et al. The occurrence of chloride ions in the apatite lattice of Holly Springs hydroxyapatite and dental enamel , 2005, Calcified Tissue Research.
[15] A. Scheinin,et al. LASER-INDUCED EFFECTS ON TOOTH STRUCTURE , 1968 .
[16] R F Sognnaes,et al. Lased Enamel: Ultrastructural Observations of Pulsed Carbon Dioxide Laser Effects , 1972, Journal of dental research.
[17] B. O. Fowler. INFRARED STUDIES OF APATITES PART 1, VIBRATIONAL ASSIGNMENTS FOR CALCIUM, STRONTIUM, AND BARIUM HYDROXYAPATITES UTILIZING ISOTOPIC SUBSTITUTION , 1974 .
[18] W. E. Moody,et al. Thermal Analysis of Human Dental Enamel , 1974 .
[19] W. E. Brown,et al. Ca4(PO4)2O, tetracalcium diphosphate monoxide. Crystal structure and relationships to Ca5(PO4)3OH and K3Na(SO4)2 , 1973 .
[20] D. W. Holcomb,et al. Thermal decomposition of human tooth enamel , 2006, Calcified Tissue International.
[21] J. Trombe,et al. Some features of the incorporation of oxygen in different oxidation states in the apatitic lattice—I On the existence of calcium and strontium oxyapatites , 1978 .
[22] H Newesely,et al. High temperature behaviour of hydroxy- and fluorapatite. Crystalchemical implications of laser effects on dental enamel. , 1977, Journal of oral rehabilitation.
[23] D Brune,et al. Interaction of pulsed carbon dioxide laser beams with teeth in vitro. , 1980, Scandinavian journal of dental research.
[24] J M Borggreven,et al. Effect of laser irradiation on the permeability of bovine dental enamel. , 1980, Archives of oral biology.
[25] B. O. Fowler. Infrared studies of apatites. I. Vibrational assignments for calcium, strontium, and barium hydroxyapatites utilizing isotopic substitution , 1974 .
[26] J. Welch,et al. 874. High-temperature studies of the system calcium oxide–phosphorus pentoxide , 1961 .
[27] J. C. Elliott,et al. The crystallographic structure of dental enamel and related apatites , 1964 .
[28] J. Arends,et al. HPO42− Content in enamel and artificial carious lesions , 1975, Calcified Tissue Research.
[29] R. G. Snyder,et al. Vibrational Spectrum of Crystalline Potassium Hydroxide , 1960 .
[30] F. Matossi,et al. Interpretation of the Vibration Spectrum of Mix‐Crystals , 1951 .