Gamma-Ray Irradiation Induced Ultrahigh Room-Temperature Ferromagnetism in MoS2 Sputtered Few-Layered Thin Films

材料科学 铁磁性 自旋电子学 磁性 拉曼光谱 X射线光电子能谱 辐照 凝聚态物理 密度泛函理论 极化子 抗磁性 电子 核磁共振 化学 计算化学 物理 磁场 光学 核物理学 量子力学
作者
Aswin kumar Anbalagan,Fang-Chi Hu,Weng Kent Chan,Ashish Chhaganlal Gandhi,Shivam Gupta,Mayur Chaudhary,Kai-Wei Chuang,Akhil K. Ramesh,Tadesse Billo,Amr Sabbah,Ching‐Yu Chiang,Yuan‐Chieh Tseng,Yu‐Lun Chueh,Sheng Yun Wu,Nyan‐Hwa Tai,Hsin‐Yi Tiffany Chen,Chih‐Hao Lee
出处
期刊:ACS Nano [American Chemical Society]
卷期号:17 (7): 6555-6564 被引量:19
标识
DOI:10.1021/acsnano.2c11955
摘要

Defect engineering is of great interest to the two-dimensional (2D) materials community. If nonmagnetic transition-metal dichalcogenides can possess room-temperature ferromagnetism (RTFM) induced by defects, then they will be ideal for application as spintronic materials and also for studying the relation between electronic and magnetic properties of quantum-confined structures. Thus, in this work, we aimed to study gamma-ray irradiation effects on MoS2, which is diamagnetic in nature. We found that gamma-ray exposure up to 9 kGy on few-layered (3.5 nm) MoS2 films induces an ultrahigh saturation magnetization of around 610 emu/cm3 at RT, whereas no significant changes were observed in the structure and magnetism of bulk MoS2 (40 nm) films even after gamma-ray irradiation. The RTFM in a few-layered gamma-ray irradiated sample is most likely due to the bound magnetic polaron created by the spin interaction of Mo 4d ions with trapped electrons present at sulfur vacancies. In addition, density functional theory (DFT) calculations suggest that the defect containing one Mo and two S vacancies is the dominant defect inducing the RTFM in MoS2. These DFT results are consistent with Raman, X-ray photoelectron spectroscopy, and ESR spectroscopy results, and they confirm the breakage of Mo and S bonds and the existence of vacancies after gamma-ray irradiation. Overall, this study suggests that the occurrence of magnetism in gamma-ray irradiated MoS2 few-layered films could be attributed to the synergistic effects of magnetic moments arising from the existence of both Mo and S vacancies as well as lattice distortion of the MoS2 structure.
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