Hu Wei, Tan Hao, Duan Hengli, Li Guinan, Li Na, Ji Qianqian, Lu Ying, Wang Yao, Sun Zhihu, Hu Fengchun, Wang Chao, Yan Wensheng
National Synchrotron Radiation Laboratory , University of Science and Technology of China , Hefei 230029 , P. R. China.
Key Laboratory of Neutronics and Radiation Safety, Institute of Nuclear Energy Safety Technology , Chinese Academy of Sciences , Hefei 230031 , Anhui , P. R. China.
ACS Appl Mater Interfaces. 2019 Aug 28;11(34):31155-31161. doi: 10.1021/acsami.9b09165. Epub 2019 Aug 19.
The activation and modulation of the magnetism of MoS nanosheets are critical to the development of their application in next-generation spintronics. Here, we report a synergetic strategy to induce and modulate the ferromagnetism of the originally nonmagnetic MoS nanosheets. A two-step experimental method was used to simultaneously introduce substitutional V dopants and sulfur vacancy (V) in the MoS nanosheet host, showing an air-stable and adjustable ferromagnetic response at room temperature. The ferromagnetism could be modulated by varying the content of V through Ar plasma irradiation of different periods, with a maximum saturation magnetization of 0.011 emu g reached at the irradiation time of 6 s (s). Experimental characterizations and first-principles calculations suggest that the adjustable magnetization is attributed to the synergetic effect of the substitutional V dopants and V in modulating the band structure of MoS nanosheets, resulting from the strong hybridization between the V 3d state and the V-induced impurity bands. This work suggests that the synergetic effect of substitutional V atoms and V is a promising route for tuning the magnetic interactions in two-dimensional nanostructures.
二硫化钼(MoS)纳米片磁性的激活与调制对于其在下一代自旋电子学中的应用发展至关重要。在此,我们报告一种协同策略,用于诱导和调制原本非磁性的MoS纳米片的铁磁性。采用两步实验方法在MoS纳米片主体中同时引入替代型V掺杂剂和硫空位(V),在室温下呈现出空气稳定且可调节的铁磁响应。通过不同时长的氩等离子体辐照改变V的含量,可以调制铁磁性,在辐照时间为6秒(s)时达到最大饱和磁化强度0.011 emu g。实验表征和第一性原理计算表明,可调节的磁化归因于替代型V掺杂剂和V在调制MoS纳米片能带结构方面的协同效应,这是由V 3d态与V诱导的杂质带之间的强杂化作用导致的。这项工作表明,替代型V原子和V的协同效应是调控二维纳米结构中磁相互作用的一条有前景的途径。