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Observation of an EPIR Effect in Nd_(1-x)Sr_xMnO_3 Ceramics with Secondary Phases

Observation of an EPIR Effect in Nd_(1-x)Sr_xMnO_3 Ceramics with Secondary Phases
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摘要 Nd1-xSrxMnO3 (x : 0.3, 0.5) ceramics containing a secondary phase are synthesized by high-energy ball milling and post heat-treatment method. The 4-wire and 2-wire measuring modes are used to investigate the transport character of the grain/phase boundary (inner interface) and electrode-bulk interface (outer interface), respectively, and the results indicate that there is a similar nonlinear I-V behaviour for both of the inner and outer interfaces, however, the electric pulse induced resistance change (EPIR) effect can only be observed at the outer interface. Nd1-xSrxMnO3 (x : 0.3, 0.5) ceramics containing a secondary phase are synthesized by high-energy ball milling and post heat-treatment method. The 4-wire and 2-wire measuring modes are used to investigate the transport character of the grain/phase boundary (inner interface) and electrode-bulk interface (outer interface), respectively, and the results indicate that there is a similar nonlinear I-V behaviour for both of the inner and outer interfaces, however, the electric pulse induced resistance change (EPIR) effect can only be observed at the outer interface.
出处 《Journal of Materials Science & Technology》 SCIE EI CAS CSCD 2013年第8期737-741,共5页 材料科学技术(英文版)
基金 the Project of Hubei Polytechnic University (No.12xjz01R) The Natural Science Foundation of Hubei Province(No.2012FFB01001) the Program of Ministry of Education of China(for New Century Excellent Talents in University, No.NCET-08-0674)for their financial supports
关键词 Electric pulse induced resistance change (EPIR) Space charge layer NONLINEARITY MANGANITE High-energy ball milling Electric pulse induced resistance change (EPIR) Space charge layer Nonlinearity Manganite High-energy ball milling
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