TY - JOUR
T1 - Electronic structures of MgO/Fe interfaces with perpendicular magnetization revealed by hard X-ray photoemission with an applied magnetic field
AU - Ueda, Shigenori
AU - Mizuguchi, Masaki
AU - Tsujikawa, Masahito
AU - Shirai, Masafumi
N1 - Funding Information:
This work was supported by CREST [Grant No. JPMJCR1524] from Japan Science and Technology Agency and the Tokodai Institute for Elemental Strategy (TIES) from the Ministry of Education, Culture, Sports, Science and Technology (MEXT), Japan. The HAXPES experiments were performed under the approval of NIMS Synchrotron X-ray Station (Proposal Nos. 2014B4606 and 2015B4606). S.U. would like to thank the staff of HiSOR, Hiroshima University and JAEA at SPring-8 for the development of HAXPES at BL15XU of SPring-8. S.U. is also grateful to Dr. M. Suzuki for his critical advice for the development of the diamond phase retarder at BL15XU.
Funding Information:
This work was supported by CREST [Grant No. JPMJCR1524] from Japan Science and Technology Agency and the Tokodai Institute for Elemental Strategy (TIES) from the Ministry of Education, Culture, Sports, Science and Technology (MEXT), Japan.
Publisher Copyright:
© 2019, © 2019 The Author(s). Published by National Institute for Materials Science in partnership with Taylor & Francis Group.
PY - 2019/12/31
Y1 - 2019/12/31
N2 - We have developed hard X-ray photoelectron spectroscopy (HAXPES) under an applied magnetic field of 1 kOe to study the electronic and magnetic states related to the MgO/Fe interface-induced perpendicular magnetic anisotropy (PMA). In this work, we used MgO (2 nm)/Fe (1.5 and 20 nm)/MgO(001) structures to reveal the interface-induced electronic states of the Fe film. Perpendicular magnetization of the 1.5-nm-thick Fe film without extrinsic oxidation of the Fe film was detected by the Fe 2p core-level magnetic circular dichroism (MCD) in HAXPES under a magnetic field, and easy magnetization axis perpendicular to the film plane was confirmed by ex situ magnetic hysteresis measurements. The valence-band HAXPES spectrum of the 1.5-nm-thick Fe film revealed that the Fe 3d electronic states were strongly modified from the thick Fe film and a reference bulk Fe sample due to the lifting of degeneracy in the Fe 3d states near the MgO/Fe interface. We found that the tetragonal distortion of the Fe film by the MgO substrate also contributes to the lifting of degeneracy in the Fe 3d states and PMA, as well as the Fe 3d-O 2p hybridization at the MgO/Fe interface, by comparing the valence-band spectrum with density functional theory calculations for MgO/Fe multilayer structures. Thus, we can conclude that the Fe 3d-O 2p hybridization and tetragonal distortion of the Fe film play important roles in PMA at the MgO/Fe interface. HAXPES with in situ magnetization thus represents a powerful new method for studying spintronic structures.
AB - We have developed hard X-ray photoelectron spectroscopy (HAXPES) under an applied magnetic field of 1 kOe to study the electronic and magnetic states related to the MgO/Fe interface-induced perpendicular magnetic anisotropy (PMA). In this work, we used MgO (2 nm)/Fe (1.5 and 20 nm)/MgO(001) structures to reveal the interface-induced electronic states of the Fe film. Perpendicular magnetization of the 1.5-nm-thick Fe film without extrinsic oxidation of the Fe film was detected by the Fe 2p core-level magnetic circular dichroism (MCD) in HAXPES under a magnetic field, and easy magnetization axis perpendicular to the film plane was confirmed by ex situ magnetic hysteresis measurements. The valence-band HAXPES spectrum of the 1.5-nm-thick Fe film revealed that the Fe 3d electronic states were strongly modified from the thick Fe film and a reference bulk Fe sample due to the lifting of degeneracy in the Fe 3d states near the MgO/Fe interface. We found that the tetragonal distortion of the Fe film by the MgO substrate also contributes to the lifting of degeneracy in the Fe 3d states and PMA, as well as the Fe 3d-O 2p hybridization at the MgO/Fe interface, by comparing the valence-band spectrum with density functional theory calculations for MgO/Fe multilayer structures. Thus, we can conclude that the Fe 3d-O 2p hybridization and tetragonal distortion of the Fe film play important roles in PMA at the MgO/Fe interface. HAXPES with in situ magnetization thus represents a powerful new method for studying spintronic structures.
KW - 203 Magnetics / Spintronics / Superconductors
KW - 212 Surface and interfaces
KW - 40 Optical
KW - 502 Electron spectroscopy
KW - Electronic structures
KW - hard X-ray photoelectron spectroscopy (HAXPES)
KW - HAXPES under a magnetic field
KW - interface-induced PMA
KW - magnetic and electronic device materials
KW - MgO/Fe interface
KW - perpendicular magnetic anisotropy (PMA)
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U2 - 10.1080/14686996.2019.1633687
DO - 10.1080/14686996.2019.1633687
M3 - Article
AN - SCOPUS:85069470559
SN - 1468-6996
VL - 20
SP - 796
EP - 804
JO - Science and Technology of Advanced Materials
JF - Science and Technology of Advanced Materials
IS - 1
ER -