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Confinement-Induced Giant Spin-Orbit-Coupled Magnetic Moment of Co Nanoclusters in TiO2 Films.
Ding, Xiang; Cui, Xiangyuan; Xiao, Chi; Luo, Xi; Bao, Nina; Rusydi, Andrivo; Yu, Xiaojiang; Lu, Zunming; Du, Yonghua; Guan, Xinwei; Tseng, Li-Ting; Lee, Wai Tung; Ahmed, Sohail; Zheng, Rongkun; Liu, Tao; Wu, Tom; Ding, Jun; Suzuki, Kiyonori; Lauter, Valeria; Vinu, Ajayan; Ringer, Simon P; Yi, Jia Bao.
Afiliação
  • Ding X; School of Materials Science and Engineering , UNSW Sydney , Kensington , NSW 2052 , Australia.
  • Xiao C; Department of Physics and Singapore Synchrotron Light Source , National University of Singapore , 119077 Singapore.
  • Luo X; School of Materials Science and Engineering , UNSW Sydney , Kensington , NSW 2052 , Australia.
  • Rusydi A; Department of Physics and Singapore Synchrotron Light Source , National University of Singapore , 119077 Singapore.
  • Du Y; Institute of Chemical and Engineering Science , Agency for Science, Technology and Research (A*STAR) , 1 Pesek Road , Jurong Island, 627833 Singapore.
  • Guan X; School of Materials Science and Engineering , UNSW Sydney , Kensington , NSW 2052 , Australia.
  • Tseng LT; Physical Sciences and Engineering Division , King Abdullah University of Science and Technology , Thuwal 23955-6900 , Saudi Arabia.
  • Lee WT; School of Materials Science and Engineering , UNSW Sydney , Kensington , NSW 2052 , Australia.
  • Ahmed S; Bragg Institute , ANSTO , New Illawarra Road , Lucas Heights, Sydney , NSW 2234 , Australia.
  • Zheng R; School of Materials Science and Engineering , UNSW Sydney , Kensington , NSW 2052 , Australia.
  • Wu T; Karls Tech GmbH , Fischreiher Strasse 3 , Karlsruhe 76187 , Germany.
  • Ding J; School of Materials Science and Engineering , UNSW Sydney , Kensington , NSW 2052 , Australia.
  • Lauter V; Department of Materials Science and Engineering , Monash University , Melbourne , Victoria 3800 , Australia.
  • Vinu A; Neutron Scattering Division, Neutron Sciences Directorate , Oak Ridge National Laboratory , Oak Ridge , Tennessee 37831 , United States.
  • Ringer SP; Global Innovative Center for Advanced Nanomaterials, School of Engineering , University of Newcastle , Callaghan , NSW 2308 , Australia.
ACS Appl Mater Interfaces ; 11(46): 43781-43788, 2019 Nov 20.
Article em En | MEDLINE | ID: mdl-31660716
ABSTRACT
High magnetization materials are in great demand for the fabrication of advanced multifunctional magnetic devices. Notwithstanding this demand, the development of new materials with these attributes has been relatively slow. In this work, we propose a new strategy to achieve high magnetic moments above room temperature. Our material engineering approach invoked the embedding of magnetic nanoclusters in an oxide matrix. By precisely controlling pulsed laser deposition parameters, Co nanoclusters are formed in a 5 at % Co-TiO2 film. The presence of these nanoclusters was confirmed using transmission electron microscopy, energy-dispersive X-ray spectroscopy, and X-ray absorption fine structure. The film exhibits a very high saturation magnetization of 99 emu/cm3. Detailed studies using X-ray magnetic circular dichroism confirm that Co has an enhanced magnetic moment of 3.5 µB/atom, while the Ti and O also contribute to the magnetic moments. First-principles calculations supported our hypothesis that the metallic Co nanoclusters surrounded by a TiO2 matrix can exhibit both large spin and orbital moments. Moreover, a quantum confinement effect results in a high Curie temperature for the embedded Co nanoclusters. These findings reveal that 1-2 nm nanoclusters that are quantum confined can exhibit very large magnetic moments above room temperature, representing a promising advance for the design of new high magnetization materials.
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Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Ano de publicação: 2019 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Ano de publicação: 2019 Tipo de documento: Article