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Emergent reversible giant electroresistance in spacially confined La0.325Pr0.3Ca0.375MnO3 wires |
Cui Li-Min (崔丽敏), Li Jie (李洁), Wang Jia (王佳), Zhang Yu (张玉), Zheng Dong-Ning (郑东宁) |
Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences, Beijing 100190, China |
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Abstract Micro-patterning is considered to be a promising way to analyze phase-separated manganites. We investigate resistance in micro-patterned La0.325Pr0.3Ca0.375MnO3 wires with width of 10 μm, which is comparable to the phase separation scale in this material. A reentrant of insulating state at the metal-insulator temperature Tp is observed and a giant resistance change of over 90% driven by electric field is achieved by suppression of this insulating state. This resistance change is mostly reversible. The I-V characteristics are measured in order to analyze the origin of the giant electroresistance and two possible explanations are proposed.
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Received: 20 May 2014
Revised: 27 May 2014
Accepted manuscript online:
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PACS:
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71.30.+h
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(Metal-insulator transitions and other electronic transitions)
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78.30.cd
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(Solutions and ionic liquids)
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64.75.Gh
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(Phase separation and segregation in model systems (hard spheres, Lennard-Jones, etc.))
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Fund: Project supported by the National Basic Research Program of China (Grant Nos. 2011CBA00106 and 2014CB921401) and the National Natural Science Foundation of China (Grant Nos. 11174342, 91321208, and 11374344). |
Corresponding Authors:
Zheng Dong-Ning
E-mail: lijie@iphy.ac.cn;dzheng@aphy.iphy.ac.cn
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Cite this article:
Cui Li-Min (崔丽敏), Li Jie (李洁), Wang Jia (王佳), Zhang Yu (张玉), Zheng Dong-Ning (郑东宁) Emergent reversible giant electroresistance in spacially confined La0.325Pr0.3Ca0.375MnO3 wires 2014 Chin. Phys. B 23 097103
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