MOE Key Laboratory of New Processing Technology for Nonferrous Metals and Materials, Guangxi Key Laboratory of Optical and Electronic Materials and Devices, College of Materials Science and Engineering, Guilin University of Technology, Guilin 541004, P. R. China.
College of Science, Guilin University of Technology, Guilin 541004, P. R. China.
Inorg Chem. 2023 Apr 17;62(15):5951-5960. doi: 10.1021/acs.inorgchem.2c04386. Epub 2023 Apr 6.
Owing to the decomposition issue of MgN, many Mg-containing ternary nitrides were prepared by the hybrid arc evaporation/sputtering technique, which has the advantages including access to the unstable phases, high film purity, good density, and uniform film formation but the drawbacks of cost and long production cycle for the required targets. In the present study, we demonstrate that rocksalt-type TiMgN, previously prepared exclusively by the thin-film methods, can be obtained as a disordered cubic phase by the conventional bulk synthesis method through a facile one-step reaction. Employing a combination of experimental measurements and theoretical calculations, we discover that the crystal structure and the physical properties of the as-synthesized TiMgN solid solution can be tuned by the Mg content; a metal-to-semiconductor transition and also suppression of the superconducting phase transition are observed when the Mg and Ti content ratio increases to close to 1. Theoretical calculations indicate that the lattice distortions in the disordered TiMgN induced by the different ionic sizes of Mg and Ti increase with the Mg content and the disordered cubic rocksalt structures become unstable. The ordered rocksalt-derived structures are more stable than the disordered rocksalt structures on composition = 0.5. Furthermore, electronic structure calculations provide an insight into the low resistance behavior and transport property evolution of TiMgN from the aspects of Ti content, the cation distribution, or nitrogen defects. The results highlight the feasibility of the simple bulk route for the successful synthesis of Mg-containing ternary nitrides and the heterovalent ion substitution on modulating the properties of nitrides.
由于 MgN 的分解问题,许多含镁的三元氮化物通过混合电弧蒸发/溅射技术制备,该技术具有获得不稳定相、高膜纯度、良好密度和均匀成膜的优点,但所需靶材的成本和生产周期长。在本研究中,我们证明了先前仅通过薄膜方法制备的岩盐型 TiMgN 可以通过传统的块体合成方法通过一步反应以无序立方相获得。通过实验测量和理论计算的结合,我们发现合成的 TiMgN 固溶体的晶体结构和物理性质可以通过 Mg 含量进行调节;当 Mg 和 Ti 含量比增加到接近 1 时,观察到金属-半导体转变和超导相转变的抑制。理论计算表明,由 Mg 和 Ti 的不同离子大小引起的无序 TiMgN 中的晶格畸变随 Mg 含量的增加而增加,无序的岩盐结构变得不稳定。有序的岩盐衍生结构在组成 = 0.5 时比无序的岩盐结构更稳定。此外,电子结构计算从 Ti 含量、阳离子分布或氮缺陷的角度深入了解了 TiMgN 的低电阻行为和输运性质的演变。结果突出了简单的块体路线成功合成含镁三元氮化物和异价离子取代对氮化物性质调节的可行性。