Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
7899757 | Journal of Non-Crystalline Solids | 2018 | 6 Pages |
Abstract
The crystallization behavior of ferroelastic βâ²-Gd2(MoO4)3 with the molar ratio of Gd2O3/MoO3â¯=â¯1/3 and Gd4Mo7O27 with Gd2O3/MoO3â¯=â¯1/3.5 in Gd2O3-MoO3-B2O3 glasses was studied to clarify the formation mechanism of βâ²-Gd2(MoO4)3 and the self-powdering phenomenon induced during the crystallization more deeply. In 20Gd2O3-60MoO3-20B2O3 glass, the Gd4Mo7O27 crystalline phase was formed initially in heat-treatments at near the glass transition temperature (Tgâ¯=â¯516â¯Â°C) prior to the formation of the β'-Gd2(MoO4)3 crystalline phase at near the crystallization peak temperature (Tpâ¯=â¯583â¯Â°C). In 18.89Gd2O3-66.11MoO3-15B2O3-1Al2O3 glass (Tgâ¯=â¯507â¯Â°C and Tpâ¯=â¯572â¯Â°C) with Gd2O3/MoO3â¯=â¯1/3.5, Gd4Mo7O27 crystals were formed through the crystallization and present stably in the wide temperature range and transformed into β'-Gd2(MoO4)3 crystals at a high temperature of 900â¯Â°C, proposing new glass-ceramics consisting of Gd4Mo7O27 crystals. The self-powdering phenomenon was not observed in the crystallized glasses with Gd4Mo7O27.
Keywords
Related Topics
Physical Sciences and Engineering
Materials Science
Ceramics and Composites
Authors
Mikiya Kotaka, Tsuyoshi Honma, Takayuki Komatsu,