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ournal of the American Ceramic Society-King et al and S. N. Hoda, "Fiber-Reinforced Composite Comprising Mica Matrix or Inter- IF. H. S. Vermaas,"A New Occurrence of Barium-Feldspar at Otjosondu ayer;"U.s.Pat.No.4948758,Aug14,1990. K. Chyung and S. B. Dawes, "Fluoromica Coated Nicalon Fiber Reinforced Hyalophane,Am. Mineral, 38, 845-57(1953). Glass ceramic c mp pt c. Halle- eactiongs between Synthetic Mica and Simple Subsolidus Relationships of Barum microcline, Hyalophane and Albite in the P Gay and N. Roy," The Mineralogy of the Potassiurm-Barium Feldspar Series 57 Com eldspar from the Noda-Tamagawa Mine, Iwate Prefec Ter Minera.J,97409-16(1979) ImM Cooper, -:, Am. Ceram. Soc, 77[7]1699-705(1994). 2M. Yoshii and K Maeda, "Relations between Barium Content and the physic T.T. King and R F nted-Temperature, Variable-Rate Mechanical ptical Properties in the Mangaoan Phlogopite-Kinoshitalite Series, Mineral. L. Brennan and K. M. prewo "Silicon carbide fibre reinforced glass-cCerami 858-65(1975) Dasgupta, S Chakraborti, P Sengupta, P K. Bhattacharya, H. Banergee, and Matrix Composites Exhibiting High Strength and Toughness,J. Mater. Sci., 17, 4. Fukuoka, "Compositional Characteristics of Kinoshitalite from the Sausar Group, 2371-83(1982) India"Am. Mineral.,74,200-202(1989) L. Munoz,“F- OH and CH Mineralogy J S. Kirkaldy and L C. Brown, "Diffusion Behavior in Ternary, Multiphase IK. Chyung, R. F. Cooper, K. P. Gadkaree, R, L. Stewart, and M. P. Taylor, Systems,Can. Met. 0, 2, 89-115(196 ment of Alkaline Earth Aluminosilicate Glass-Ceramics, U.S. Pat. No Y. A. Chang, "A Combined Thermodynamic and Kinetic Approach to the 4615987,Oct.7,1986 Metallization of GaAs, Mater. Res. Soc. Symp. Proc, 260, 43-52(1992). 2G. H. Beall, K. Chyung, and H. J. Watkins, "Mica Glass-Ceramics, "U.S. Pat. No. R. Freer, "Diffusion in Silicate Minerals and Glasses: A Data Digest and Guide the Literature, Contrib. Mineral. Petrol, 76, 440-54(19 3B. Yoshiki and K. Matsumoto. "H perature Modification of Barium H. Schmalzried, Solid State Reactions, 2nd Ed, pp. 143-47, Verlag Chemie, Feldspar, " J. Am. Ceram Soc., 34[91283-86(1951). Germany, 1981 nd D R. Uhlmann, Introduction to Ceramics Ed. pp. 381-401. Wiley, N 1976 ISN. Frety, A. Taylor, and M. H. Lewis, " Microstructure and Crystallization Solids, Liquids, Gases; pp. 68-69 Behavior of Sol-Gel Derived ySro-yBa0-Al2O3-2SiO, Glass-Ceramic,J.Non- London, U.K., 19 Cryst. Solids,195,28-37(1996) D. Swenson, C. H. Jan, and Y A Chang, "The Formation of Ohn leE. F, Osborn and A. Muan, "The System Mg0-Al2O-SiO2" Plate 3 in Phase Enhanced Contacts to Ill-V Compound Semiconductors via the Exi nae M Equlibriun Diagrams of Oxide Systems. American Ceramic Society and Edward nism: A Combined Thermodynamic and Kinetic Model, J. Appl. Plrys, 84[8] Orton Jr. Ceramic Foundation, Columbus, OH, 1960. 4332-42(1998) Segnit,"Barium-Feldspars from Broken Hill, New South Wales,Mineral. Mag,27192]166-75(1946 " F.S. Spear, Metamorphic Phase Equilibria and Pressure-Temperature a Paths, p. 612. Mineralogical Society of America, Washington, DC, 1993.and S. N. Hoda, “Fiber-Reinforced Composite Comprising Mica Matrix or Inter￾layer,” U.S. Pat. No. 4 948 758, Aug. 14, 1990. 5 K. Chyung and S. B. Dawes, “Fluoromica Coated Nicalon Fiber Reinforced Glass-Ceramic Composites,” Mater. Sci. Eng. A, A162, 27–33 (1993). 6 R. F. Cooper and P. C. Hall, “Reactions between Synthetic Mica and Simple Oxide Compounds with Application to Oxidation-Resistant Ceramic Composites,” J. Am. Ceram. Soc., 76 [5] 1265–73 (1993). 7 T. T. King and R. F. Cooper, “Ambient-Temperature Mechanical Response of Alumina–Fluoromica Laminates,” J. Am. Ceram. Soc., 77 [7] 1699–705 (1994). 8 T. T. King and R. F. Cooper, “Elevated-Temperature, Variable-Rate Mechanical Response of Alumina–Fluoromica Laminates”; unpublished work. 9 J. J. Brennan and K. M. Prewo, “Silicon Carbide Fibre Reinforced Glass-Ceramic Matrix Composites Exhibiting High Strength and Toughness,” J. Mater. Sci., 17, 2371–83 (1982). 10J. L. Munoz, “FOOH and ClOOH Exchange in Micas with Applications to Hydrothermal Ore Deposits”; pp. 469–93 in Reviews in Mineralogy, Vol. 13, Micas. Edited by S. W. Bailey. Mineralogical Society of America, Blacksburg, VA, 1984. 11K. Chyung, R. F. Cooper, K. P. Gadkaree, R. L. Stewart, and M. P. Taylor, “Reinforcement of Alkaline Earth Aluminosilicate Glass-Ceramics,” U.S. Pat. No. 4 615 987, Oct. 7, 1986. 12G. H. Beall, K. Chyung, and H. J. Watkins, “Mica Glass-Ceramics,” U.S. Pat. No. 3 801 295, Apr. 2, 1974. 13B. Yoshiki and K. Matsumoto, “High-Temperature Modification of Barium Feldspar,” J. Am. Ceram. Soc., 34 [9] 283–86 (1951). 14R. E. Newnham and H. D. Meagaw, “The Crystal Structure of Celsian (Barium Feldspar),” Acta Crystallogr., 13, 303–308 (1960). 15N. Frety, A. Taylor, and M. H. Lewis, “Microstructure and Crystallization Behavior of Sol–Gel Derived 1⁄2SrO–1⁄2BaO–Al2O3–2SiO2 Glass-Ceramic,” J. Non￾Cryst. Solids, 195, 28–37 (1996). 16E. F. Osborn and A. Muan, “The System MgO–Al2O3–SiO2”; Plate 3 in Phase Equilibrium Diagrams of Oxide Systems. American Ceramic Society and Edward Orton Jr. Ceramic Foundation, Columbus, OH, 1960. 17E. R. Segnit, “Barium-Feldspars from Broken Hill, New South Wales,” Mineral. Mag., 27 [192] 166–75 (1946). 18F. H. S. Vermaas, “A New Occurrence of Barium-Feldspar at Otjosondu, South-West Africa, and an X-ray Method for Determining the Composition of Hyalophane,” Am. Mineral., 38, 845–57 (1953). 19P. Gay and N. Roy, “The Mineralogy of the Potassium-Barium Feldspar Series III: Subsolidus Relationships,” Mineral. Mag., 36, 914–32 (1968). 20S. Nakano, “Intergrowth of Barium Microcline, Hyalophane and Albite in the Barium Containing Alkali Feldspar from the Noda-Tamagawa Mine, Iwate Prefec￾ture, Japan,” Mineral. J., 9 [7] 409–16 (1979). 21M. Yoshii and K. Maeda, “Relations between Barium Content and the Physical and Optical Properties in the Mangaoan Phlogopite–Kinoshitalite Series,” Mineral. J., 8 [1] 58–65 (1975). 22S. Dasgupta, S. Chakraborti, P. Sengupta, P. K. Bhattacharya, H. Banergee, and M. Fukuoka, “Compositional Characteristics of Kinoshitalite from the Sausar Group, India,” Am. Mineral., 74, 200–202 (1989). 23M. F. Brigatti and L. Poppi, “Crystal Chemistry of Ba-rich Trioctahedral Micas-1M,” Eur. J. Mineral., 5, 857–71 (1993). 24J. S. Kirkaldy and L. C. Brown, “Diffusion Behavior in Ternary, Multiphase Systems,” Can. Met. Q., 2, 89–115 (1963). 25Y. A. Chang, “A Combined Thermodynamic and Kinetic Approach to the Metallization of GaAs,” Mater. Res. Soc. Symp. Proc., 260, 43–52 (1992). 26R. Freer, “Diffusion in Silicate Minerals and Glasses: A Data Digest and Guide to the Literature,” Contrib. Mineral. Petrol., 76, 440–54 (1981). 27H. Schmalzried, Solid State Reactions, 2nd Ed.; pp. 143–47. Verlag Chemie, Weinheim, Germany, 1981. 28W. D. Kingery, H. K. Bowen, and D. R. Uhlmann, Introduction to Ceramics, 2nd Ed.; pp. 381–401. Wiley, New York, 1976. 29W. Jost, Diffusion in Solids, Liquids, Gases; pp. 68–69. Academic Press, London, U.K., 1952. 30D. Swenson, C. H. Jan, and Y. A. Chang, “The Formation of Ohmic and Schottky Enhanced Contacts to III–V Compound Semiconductors via the Exchange Mecha￾nism: A Combined Thermodynamic and Kinetic Model,” J. Appl. Phys., 84 [8] 4332–42 (1998). 31F. S. Spear, Metamorphic Phase Equilibria and Pressure-Temperature–Time Paths; p. 612. Mineralogical Society of America, Washington, DC, 1993. M 2296 Journal of the American Ceramic Society—King et al. Vol. 83, No. 9
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