八面体
纳米棒
结晶学
材料科学
衍射
相变
六方晶系
化学物理
晶体结构
纳米技术
化学
凝聚态物理
物理
光学
作者
Ning Ding,Honglong Shi,Zeqian Zhang,Minting Luo,Zhenfei Hu
标识
DOI:10.1107/s1600576724000050
摘要
Ga 2 O 3 is an ultra-wide-bandgap semiconductor that is receiving considerable attention due to its promising applications in high-frequency, high-power and high-temperature settings. It can be prepared by calcinating the α-GaOOH phase at high temperatures. Understanding the significance of hydroxyl groups in α-GaOOH, dehydroxylation and the structural transition at high temperatures has become a key aspect of preparing high-quality α-Ga 2 O 3 crystals, but the underlying mechanism remains unknown. In this research, α-GaOOH nanorods were hydrothermally synthesized and the structural evolution of α-GaOOH investigated at high temperatures by in situ X-ray diffraction. The hydroxyl group in α-GaOOH squeezes Ga 3+ from the center of the [GaO 6 ] octahedron, resulting in deformed [GaO 6 ] octahedra and significant microstrain in α-GaOOH. The hydroxyl groups are peeled off from α-GaOOH when the temperature exceeds 200°C, resulting in contraction along the c -axis direction and expansion along the a -axis direction of α-GaOOH. When the temperature exceeds 300°C, the Ga—O bond inside the double chains preferentially breaks to generate square-wave-like octahedron chains, and the neighboring chains repack to form hexagonal-like octahedron layers. The octahedron layers are packed up and down by electrostatic interaction to generate the α-Ga 2 O 3 structure. This work highlights the role of hydroxyl groups in α-GaOOH, dehydroxylation and the structural transition on the atomic scale, providing valuable guidelines for the fabrication of high-quality α-Ga 2 O 3 crystals.
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