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MgO/ZnO比例对MgZnO陶瓷形成过程的影响。

Effect of MgO/ZnO ratio on the formation process of MgZnO ceramics.

作者信息

Korsunska N, Polishchuk Yu, Ponomaryov S, Kozoriz K, Chusnutdinow S, Melnichuk O, Melnichuk L, Khomenkova L

机构信息

V. Lashkaryov Institute of Semiconductor Physics at the National Academy of Sciences of Ukraine, Kyiv, Ukraine.

Institute of Physics, Polish Academy of Sciences, Warsaw, Poland.

出版信息

Heliyon. 2024 Aug 2;10(16):e35594. doi: 10.1016/j.heliyon.2024.e35594. eCollection 2024 Aug 30.

DOI:10.1016/j.heliyon.2024.e35594
PMID:39220939
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11365317/
Abstract

The structural characteristics, chemical composition, and element spatial distribution in MgZnO ceramics were investigated using X-ray diffraction, scanning electron microscopy, Auger electron spectroscopy, energy-dispersive X-ray spectroscopy, and cathodoluminescence techniques. The study revealed that the morphology of the ceramic samples, as well as the mechanism of solid solution formation, depend on the relative contribution of both oxides in the charge. It was discovered that hexagonal and cubic phases of the solid solution were found to form simultaneously. An increase in the MgO content in the charge results in the magnesium content rise in the hexagonal grains continuously, reaching approximately 13 at.%. It was discovered an enrichment of grain boundaries with zinc and magnesium playing a significant role in doping ZnO and MgO grains. Obtained results allowed to propose two mechanisms involved in the formation of solid solution ceramics: i) diffusion of Mg and Zn along grain boundaries, followed by their incorporation into ZnO or MgO grains, respectively, and ii) interdiffusion of Mg into ZnO and Zn into MgO due to direct contact of ZnO and MgO grains. The second mechanism appears to dominate when both ZnO and MgO contribute comparably, increasing the probability of their direct contact. This study significantly advances the understanding of the process of the formation of MgZnO ceramics under thermodynamic conditions. These insights are crucial for optimizing the doping process and improving the material properties, thereby promoting innovations in the ceramics industry.

摘要

利用X射线衍射、扫描电子显微镜、俄歇电子能谱、能量色散X射线光谱和阴极发光技术研究了MgZnO陶瓷的结构特征、化学成分和元素空间分布。研究表明,陶瓷样品的形貌以及固溶体形成机制取决于炉料中两种氧化物的相对含量。发现固溶体的六方相和立方相同时形成。炉料中MgO含量的增加导致六方晶粒中镁含量持续上升,达到约13原子%。发现晶界富含锌,且镁在掺杂ZnO和MgO晶粒中起重要作用。所得结果有助于提出固溶体陶瓷形成过程中涉及的两种机制:i)Mg和Zn沿晶界扩散,随后分别掺入ZnO或MgO晶粒中;ii)由于ZnO和MgO晶粒直接接触,Mg向ZnO中扩散以及Zn向MgO中扩散。当ZnO和MgO的贡献相当时,第二种机制似乎占主导地位,增加了它们直接接触的可能性。这项研究显著推进了对热力学条件下MgZnO陶瓷形成过程的理解。这些见解对于优化掺杂过程和改善材料性能至关重要,从而推动陶瓷行业的创新。

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本文引用的文献

1
Initial oxidation and interfacial diffusion of Zn on faceted MgO(111) films.锌在多面氧化镁(111)薄膜上的初始氧化及界面扩散
Langmuir. 2008 Aug 19;24(16):8760-4. doi: 10.1021/la801314s. Epub 2008 Jul 15.