The increasing demand for denser information storage and faster data processing has fueled a keen interest in exploring spin currents up to terahertz (THz) frequencies. Emergent 2D intrinsic magnetic materials constitute a novel and highly controllable platform to access such femtosecond spin dynamics at atomic layer thickness. However, the function of 2D van der Waals magnets are limited by their Curie temperatures, which are usually low. Here, in a 2D superlattice (Fe(3)GeTe(2)/CrSb)(3), we demonstrate ultrafast laser-induced spin current generation and THz radiation at room temperature, overcoming the challenge of the Curie temperature of Fe(3)GeTe(2) being only 206Â K. In tandem with time-resolved magneto-optical Kerr effect measurements and first-principles calculations, we further elucidate the origin of the spin currents-a laser-enhanced proximity effect manifested as a laser-induced reduction of interlayer distance and enhanced electron exchange interactions, which causes transient spin polarization in the heterostructure. Our findings present an innovative, magnetic-element-free route for generating ultrafast spin currents within the 2D limit, underscoring the significant potential of laser THz emission spectroscopy in investigating laser-induced extraordinary spin dynamics.
Above-Curie-temperature ultrafast terahertz emission and spin current generation in a 2D superlattice (Fe(3)GeTe(2)/CrSb)(3).
阅读:4
作者:Li Peiyan, Wu Na, Liu Shanshan, Cheng Yu, Gong Piming, Tong Junwei, Liu Jianan, He Wei, Xiu Faxian, Zhao Jimin, Meng Sheng, Wu Xiaojun
| 期刊: | National Science Review | 影响因子: | 17.100 |
| 时间: | 2025 | 起止号: | 2024 Dec 11; 12(3):nwae447 |
| doi: | 10.1093/nsr/nwae447 | ||
特别声明
1、本文转载旨在传播信息,不代表本网站观点,亦不对其内容的真实性承担责任。
2、其他媒体、网站或个人若从本网站转载使用,必须保留本网站注明的“来源”,并自行承担包括版权在内的相关法律责任。
3、如作者不希望本文被转载,或需洽谈转载稿费等事宜,请及时与本网站联系。
4、此外,如需投稿,也可通过邮箱info@biocloudy.com与我们取得联系。
