• Acta Physica Sinica
  • Vol. 69, Issue 9, 096801-1 (2020)
Hao-Chang Lü1、2, Yun-Chi Zhao2, Guang Yang1, Bo-Wen Dong1, Jie Qi1, Jing-Yan Zhang1, Zhao-Zhao Zhu2, Yang Sun2, Guang-Hua Yu1, Yong Jiang1, Hong-Xiang Wei2, Jing Wang2, Jun Lu2, Zhi-Hong Wang2, Jian-Wang Cai2, Bao-Gen Shen1、2, Feng Yang3, Shen-Jin Zhang3, and Shou-Guo Wang1、2、*
Author Affiliations
  • 1Department of Materials Physics and Chemistry, School of Materials Science and Engineering, University of Science and Technology Beijing, Beijing 100083, China
  • 2State Key Laboratory of Magnetism, Institute of Physics, Chinese Academy of Sciences, Beijing 100190, China
  • 3Key Laboratory of Functional Crystals and Laser Technology, Technical Institute of Physics and Chemistry, Chinese Academy of Sciences, Beijing 100190, China
  • show less
    DOI: 10.7498/aps.69.20200083 Cite this Article
    Hao-Chang Lü, Yun-Chi Zhao, Guang Yang, Bo-Wen Dong, Jie Qi, Jing-Yan Zhang, Zhao-Zhao Zhu, Yang Sun, Guang-Hua Yu, Yong Jiang, Hong-Xiang Wei, Jing Wang, Jun Lu, Zhi-Hong Wang, Jian-Wang Cai, Bao-Gen Shen, Feng Yang, Shen-Jin Zhang, Shou-Guo Wang. High resolution imaging based on photo-emission electron microscopy excited by deep ultraviolet laser[J]. Acta Physica Sinica, 2020, 69(9): 096801-1 Copy Citation Text show less

    Abstract

    Magnetic imaging technology based on photo-emission electron microscopy (PEEM) has become an important and powerful tool for observing the magnetic domain in spintronics. The PEEM can get access to real-time imaging with high spatial resolution and is greatly sensitive to the spectroscopic information directly from the magnetic films and surfaces through photoemission process with variable excitation sources. Moreover, the breakthrough in the deep ultraviolet (DUV) laser technology makes it possible to realize domain imaging without the limitation of synchrotron radiation facilities or the direct excitation of photoelectrons due to the high enough photon energy of the source in the current threshold excitation study. In this review article, the deep ultraviolet photo-emission electron microscopy system is first introduced briefly. Then, a detailed study of the magnetic domain observation for the surface of L10-FePt films by the DUV-PEEM technique is presented, where a spatial resolution as high as 43.2 nm is successfully achieved. The above results clearly indicate that the DUV-PEEM reaches a level equivalent to the level reached by X-ray photoemission imaging technique. Finally, a series of recent progress of perpendicular FePt magnetic thin films obtained by the DUV-PEEM technique is provided in detail. For example, a stepped Cr seeding layer is used to form the large-area epitaxial FePt films with (001) and (111) two orientations, where magnetic linear dichroism (MLD) with large asymmetry is observed in the transition area of two phases. The signal of MLD is 4.6 times larger than that of magnetic circular dichroism. These results demonstrate that the magnetic imaging technology based on DUV-PEEM with excellent resolution ability will potentially become an important method to study magnetic materials in the future.
    Hao-Chang Lü, Yun-Chi Zhao, Guang Yang, Bo-Wen Dong, Jie Qi, Jing-Yan Zhang, Zhao-Zhao Zhu, Yang Sun, Guang-Hua Yu, Yong Jiang, Hong-Xiang Wei, Jing Wang, Jun Lu, Zhi-Hong Wang, Jian-Wang Cai, Bao-Gen Shen, Feng Yang, Shen-Jin Zhang, Shou-Guo Wang. High resolution imaging based on photo-emission electron microscopy excited by deep ultraviolet laser[J]. Acta Physica Sinica, 2020, 69(9): 096801-1
    Download Citation