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Mineral-phase evolution and sintering behavior of MO–SiO_2–Al_2O_3–B_2O_3 (M = Ca,Ba) glass-ceramics by low-temperature liquid-phase sintering

Mineral-phase evolution and sintering behavior of MO–SiO_2–Al_2O_3–B_2O_3 (M = Ca,Ba) glass-ceramics by low-temperature liquid-phase sintering
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摘要 In this work, network former SiO_2 and network intermediate Al_2O_3 were introduced into typical low-melting binary compositions CaO·B_2O_3, CaO·2B_2O_3, and BaO·B_2O_3 via an aqueous solid-state suspension milling route. Accordingly, multiple-phase aluminosilicate glass-ceramics were directly obtained via liquid-phase sintering at temperatures below 950°C. On the basis of liquid-phase sintering theory, mineral-phase evolutions and glass-phase formations were systematically investigated in a wide MO–SiO_2–Al_2O_3–B_2O_3(M = Ca, Ba) composition range. The results indicate that major mineral phases of the aluminosilicate glass-ceramics are Al_(20)B_4O_(36), CaAl_2Si_2O_8, and BaAl_2Si_2O_8 and that the glass-ceramic materials are characterized by dense microstructures and excellent dielectric properties. In this work, network former SiO_2 and network intermediate Al_2O_3 were introduced into typical low-melting binary compositions CaO·B_2O_3, CaO·2B_2O_3, and BaO·B_2O_3 via an aqueous solid-state suspension milling route. Accordingly, multiple-phase aluminosilicate glass-ceramics were directly obtained via liquid-phase sintering at temperatures below 950°C. On the basis of liquid-phase sintering theory, mineral-phase evolutions and glass-phase formations were systematically investigated in a wide MO–SiO_2–Al_2O_3–B_2O_3(M = Ca, Ba) composition range. The results indicate that major mineral phases of the aluminosilicate glass-ceramics are Al_(20)B_4O_(36), CaAl_2Si_2O_8, and BaAl_2Si_2O_8 and that the glass-ceramic materials are characterized by dense microstructures and excellent dielectric properties.
出处 《International Journal of Minerals,Metallurgy and Materials》 SCIE EI CAS CSCD 2018年第9期1042-1054,共13页 矿物冶金与材料学报(英文版)
基金 financially supported by the Fundamental Research Funds for the Central Universities of China(No.A0920502051513-5)
关键词 GLASS-CERAMICS LIQUID-PHASE sintering ALUMINOSILICATE MINERAL phase MICROSTRUCTURES glass-ceramics liquid-phase sintering aluminosilicate mineral phase microstructures
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  • 1C. Sadik, I.E. Amrani, and A. Albizane, Recent advances in silica-alumina refractory: a review, J. Asian Ceram. Soc., 2(2014), No. 2, p. 83.
  • 2E.M. Levin and H.F. McMurdie, Phase Diagrams for Ce- ramists, American Ceramic Society, Columbus, OH, 1956, p. 4.
  • 3S.J. Ke, X.S. Cheng, Y.M. Wang, Q.H. Wang, and H. Wang, Dolomite, wollastonite and calcite as different CaO sources in anorthite-based porcelain, Ceram. Int., 39(2013), No. 5, p. 4953.
  • 4X.S. Cheng, S.J. Ke, Q.H. Wang, H. Wang, A.Z. Shui, and P.G. Liu, Fabrication and characterization of anorthite-based ceramic using mineral raw materials, Ceram. Int., 38(2012), No. 4, p. 3227.
  • 5M. Sutcu and S. Akkurt, Utilization of recycled paper proc- essing residues and clay of different sources for the produc- tion of porous anorthite ceramics, J. Eur. Ceram. Soc., 30(2010), No. 8, p. 1785.
  • 6B.L. Wang, L.Z. Sun, H.D. Ju, S.L. Zhao, D.G. Deng, H.P. Wang, and S.Q. Xu, Single-phased white-light emitting CaAIzSi208: Eu2+, Mn2+ phosphors prepared by a sol-gel method, J. Sol Gel Sci. TechnoL, 50(2009), No. 3, p. 368.
  • 7M. Kang and S. Kang, Influence of A1203 additions on the crystallization mechanism and properties of diop- side/anorthite hybrid glass-ceramics for LED packaging ma- terials, J. Cryst. Growth, 326(2011), No. 1, p. 124.
  • 8A. Mergen and V.Z. Aslanoflu, Low-temperature fabrication of anorthite ceramics from kaolinite and calcium carbonate with boron oxide addition, Ceram. Int., 29(2003), No. 6, p. 667.
  • 9S. Kavalci, E. Yalamag, and S. Akkurt, Effects of boron addi- tion and intensive grinding on synthesis of anorthite ceramics, Ceram. Int., 34(2008), No. 7, p. 1629.
  • 10L.E. Khoong, Y.M. Tan, and Y.C. Lain, Carbon burnout and densification of self-constrained LTCC for fabrication of embedded structures in a multi-layer platform, J. Eur. Ceram. Soc., 29(2009), No. 3, p. 457.

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