TY - JOUR
T1 - Study of Static Flexural Strength Anisotropy of Yttrium Calcium Oxyborate Crystals
AU - Ren, Chengkai
AU - Chen, Weirong
AU - Tu, Xiaoniu
AU - Wang, Sheng
AU - Xiong, Kainan
AU - Shen, Liming
AU - Bao, Ningzhong
AU - Zheng, Yanqing
AU - Shi, Erwei
N1 - Publisher Copyright:
© 2023 American Chemical Society.
PY - 2023/4/5
Y1 - 2023/4/5
N2 - As a promising optical and piezoelectric crystal, yttrium calcium oxyborate (YCOB) has been criticized for its easy fracture during both the cooling and machining processes. Herein, in order to evaluate the mechanical energy (G) required for crack propagation on one crystal plane, we measured the bending strength of the YCOB samples with different orientations via employing a three-point bending test. The surface topography of the polished sample was measured, and the average surface roughness is limited to 10 nm. Fracture surfaces were also observed and analyzed. The results showed that the bending strengths of Y-cut and Z-cut samples were higher than other cut directions in the XZ principal plane, showing obvious anisotropy. It can be found that the cleavage planes Formula Presented and (101) were always observed in fractured samples in multiple directions in the XZ principal plane. The contribution of the cleavage planes Formula Presented and (101) to the fracture of the specimens was discussed in detail by the theorem of energy minimum. Finally, based on the obtained scanning electron microscopy results, we propose the mechanism for crack advance in YCOB crystals. A perfectly brittle crack in a crystal prefers cleavage planes with low surface energy. It is believed that these findings may provide fresh ideas to overcome the cleavage fracture of larger size YCOB crystals.
AB - As a promising optical and piezoelectric crystal, yttrium calcium oxyborate (YCOB) has been criticized for its easy fracture during both the cooling and machining processes. Herein, in order to evaluate the mechanical energy (G) required for crack propagation on one crystal plane, we measured the bending strength of the YCOB samples with different orientations via employing a three-point bending test. The surface topography of the polished sample was measured, and the average surface roughness is limited to 10 nm. Fracture surfaces were also observed and analyzed. The results showed that the bending strengths of Y-cut and Z-cut samples were higher than other cut directions in the XZ principal plane, showing obvious anisotropy. It can be found that the cleavage planes Formula Presented and (101) were always observed in fractured samples in multiple directions in the XZ principal plane. The contribution of the cleavage planes Formula Presented and (101) to the fracture of the specimens was discussed in detail by the theorem of energy minimum. Finally, based on the obtained scanning electron microscopy results, we propose the mechanism for crack advance in YCOB crystals. A perfectly brittle crack in a crystal prefers cleavage planes with low surface energy. It is believed that these findings may provide fresh ideas to overcome the cleavage fracture of larger size YCOB crystals.
UR - http://www.scopus.com/inward/record.url?scp=85149778936&partnerID=8YFLogxK
U2 - 10.1021/acs.cgd.2c01316
DO - 10.1021/acs.cgd.2c01316
M3 - 文章
AN - SCOPUS:85149778936
SN - 1528-7483
VL - 23
SP - 2272
EP - 2280
JO - Crystal Growth and Design
JF - Crystal Growth and Design
IS - 4
ER -