Layer-dependent electronic and magnetic properties of two-dimensional graphitic molybdenum carbide

Intrinsic magnetic two-dimensional (2D) materials with high critical temperature are highly desired in advanced spintronics applications. Via first-principles calculations, we firstly predict that two-dimensional molybdenum carbide (with a chemical formula of Mo2C12) monolayer is a highly stable ant...

全面介紹

Saved in:
書目詳細資料
Main Authors: Wang, Hao, Zhang, Yongjie, Yam, Kah Meng, Tang, Xinghui, Wang, Xue-Sen, Zhang, Chun
其他作者: School of Chemistry, Chemical Engineering and Biotechnology
格式: Article
語言:English
出版: 2024
主題:
在線閱讀:https://hdl.handle.net/10356/173791
標簽: 添加標簽
沒有標簽, 成為第一個標記此記錄!
機構: Nanyang Technological University
語言: English
實物特徵
總結:Intrinsic magnetic two-dimensional (2D) materials with high critical temperature are highly desired in advanced spintronics applications. Via first-principles calculations, we firstly predict that two-dimensional molybdenum carbide (with a chemical formula of Mo2C12) monolayer is a highly stable antiferromagnetic (AFM) semiconductor with a band gap around 1 eV and a high Néel temperature of 420 K. We then show that the multilayer (Mo2C12)n, where n is the number of layers, exhibits interesting electronic and magnetic properties that are sensitively dependent on the number of layers. The stability of the AFM configuration and the energy gap rapidly decrease with the number of layers. When n≤5, (Mo2C12)n remains AFM, while magnetic moments are mainly located on surface Mo atoms, and Mo atoms on top and bottom surfaces have opposite spin polarizations. When n>5, the AFM phase is unstable and the material becomes metallic. These layer-tunable properties make (Mo2C12)n potentially useful for various electronics and spintronics applications. As one example, an intriguing (Mo2C12)5 based magnetic metal–semiconductor–metal heterojunction is proposed in this work.