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Giant positive magnetoresistance in half-metallic double-perovskite Sr 2 CrWO 6 thin films
Author(s) -
Ji Zhang,
WeiJing Ji,
Jie Xu,
Xiaoyu Geng,
Jian Zhou,
ZhengBin Gu,
ShuHua Yao,
ShanTao Zhang
Publication year - 2017
Publication title -
science advances
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.928
H-Index - 146
ISSN - 2375-2548
DOI - 10.1126/sciadv.1701473
Subject(s) - ferrimagnetism , magnetoresistance , giant magnetoresistance , perovskite (structure) , materials science , thin film , metal , colossal magnetoresistance , condensed matter physics , magnetization , metallurgy , chemistry , nanotechnology , magnetic field , crystallography , physics , quantum mechanics
Magnetoresistance (MR) is the magnetic field–induced change of electrical resistance. The MR effect not only has wide applications in hard drivers and sensors but also is a long-standing scientific issue for complex interactions. Ferromagnetic/ferrimagnetic oxides generally show negative MR due to the magnetic field–induced spin order. We report the unusually giant positive MR up to 17,200% (at 2 K and 7 T) in 12-nm Sr2CrWO6 thin films, which show metallic behavior with high carrier density of up to 2.26 × 1028 m−3 and high mobility of 5.66 × 104 cm2 V−1 s−1. The possible mechanism is that the external magnetic field suppresses the long-range antiferromagnetic order to form short-range antiferromagnetic fluctuations, which enhance electronic scattering and lead to the giant positive MR. The high mobility may also have contributions to the positive MR. These results not only experimentally confirm that the giant positive MR can be realized in oxides but also open up new opportunities for developing and understanding the giant positive MR in oxides.

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