Stoichiometry-Tunable Synthesis and Magnetic Property Exploration of Two-Dimensional Chromium Selenides
Fangfang Cui, Kun He, Shengqiang Wu, Hongmei Zhang, Yue Lu, Zhenzhu Li, Jingyi Hu, Shuangyuan Pan, Lijie Zhu, Yahuan Huan, Bo Li, Xidong Duan, Qingqing Ji, Xiaoxu Zhao, Yanfeng Zhang
Abstract
Emerging 2D chromium-based dichalcogenides (CrX n (X = S, Se, Te; 0 < n ≤ 2)) have provoked enormous interests due to their abundant structures, intriguing electronic and magnetic properties, excellent environmental stability, and great application potentials in next generation electronics and spintronics devices. Achieving stoichiometry-controlled synthesis of 2D CrX n is of paramount significance for such envisioned investigations. Herein, we report the stoichiometry-controlled syntheses of 2D chromium selenide (Cr x Se y ) materials (rhombohedral Cr 2 Se 3 and monoclinic Cr 3 Se 4 ) via a Cr-self-intercalation route by designing two typical chemical vapor deposition (CVD) strategies. We have also clarified the different growth mechanisms, distinct chemical compositions, and crystal structures of the two type materials. Intriguingly, we reveal that the ultrathin Cr 2 Se 3 nanosheets exhibit a metallic feature, while the Cr 3 Se 4 nanosheets present a transition from p -type semiconductor to metal upon increasing the flake thickness. Moreover, we have also uncovered the ferromagnetic properties of 2D Cr 2 Se 3 and Cr 3 Se 4 below ∼70 K and ∼270 K, respectively. Briefly, this research should promote the stoichiometric-ratio controllable syntheses of 2D magnetic materials, and the property explorations toward next generation spintronics and magneto-optoelectronics related applications.