Magnetic Interaction and Electronic Transport in La0.4Bi0.6Mn0.5Ti0.5O3 Manganite
We report magnetic interactions and electronic transport properties in La 0.4 Bi 0.6 Mn 0.5 Ti 0.5 O 3 perovskite manganite synthesized using solid-state route. After characterizing the samples structurally, the systematic investigations of magnetic and electrical transport behaviors have been under...
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Veröffentlicht in: | IEEE transactions on magnetics 2015-11, Vol.51 (11), p.1-4 |
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creator | Dayal, Vijaylakshmi Punith Kumar, V. Hadimani, R. L. Balfour, E. A. Fu, H. Jiles, D. C. |
description | We report magnetic interactions and electronic transport properties in La 0.4 Bi 0.6 Mn 0.5 Ti 0.5 O 3 perovskite manganite synthesized using solid-state route. After characterizing the samples structurally, the systematic investigations of magnetic and electrical transport behaviors have been undertaken. It has been observed that at low temperatures near TC, the sample is magnetically frustrated leading to the second-order magnetic transition. A justification for the observed magnetic behavior has been explained based on Arrott's plot study. The resistivity as a function of temperature in the absence and the presence of applied magnetic field suggests semiconducting nature of the sample. The conduction of the charge carriers is explained using Shklovskii-Efros-type variable-range-hopping mechanism. |
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L. ; Balfour, E. A. ; Fu, H. ; Jiles, D. C.</creator><creatorcontrib>Dayal, Vijaylakshmi ; Punith Kumar, V. ; Hadimani, R. L. ; Balfour, E. A. ; Fu, H. ; Jiles, D. C.</creatorcontrib><description>We report magnetic interactions and electronic transport properties in La 0.4 Bi 0.6 Mn 0.5 Ti 0.5 O 3 perovskite manganite synthesized using solid-state route. After characterizing the samples structurally, the systematic investigations of magnetic and electrical transport behaviors have been undertaken. It has been observed that at low temperatures near TC, the sample is magnetically frustrated leading to the second-order magnetic transition. A justification for the observed magnetic behavior has been explained based on Arrott's plot study. The resistivity as a function of temperature in the absence and the presence of applied magnetic field suggests semiconducting nature of the sample. 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The conduction of the charge carriers is explained using Shklovskii-Efros-type variable-range-hopping mechanism.</description><subject>Arrott Plots</subject><subject>Hopping conduction</subject><subject>Magnetic field measurement</subject><subject>Magnetic fields</subject><subject>Magnetic properties</subject><subject>Magnetism</subject><subject>Magnetization</subject><subject>Magnetoelectronics</subject><subject>Perovskite manganite</subject><subject>SE-VRH mechanism</subject><subject>Temperature</subject><subject>Temperature measurement</subject><issn>0018-9464</issn><issn>1941-0069</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2015</creationdate><recordtype>article</recordtype><sourceid>RIE</sourceid><recordid>eNo9kFFLwzAUhYMoOKc_QHwp-Nx6b5KmzeMc2xysDKE-hzRNR8ZMZ5o9-O_t2PDp3ss55x74CHlGyBBBvtXVbJVRwDyjnDEm-Q2ZoOSYAgh5SyYAWKaSC35PHoZhP548R5iQz0rvvI3OJGsfbdAmut4n2rfJ4mBNDL0fpTpoPxz7EBPnk42GjL87yETlIcvrccu3LKm032nvon0kd50-DPbpOqfka7mo5x_pZrtaz2eb1FDJYtqiaBiypi24obplLTW60KYtNGuEbfNSmKIRXFhqgFIrZVPapmFl1wnDeCnZlLxe_h5D_3OyQ1T7_hT8WKmwGCtkzkU-uvDiMqEfhmA7dQzuW4dfhaDO5NSZnDqTU1dyY-blknHW2n9_gVACR_YHnZJn_A</recordid><startdate>201511</startdate><enddate>201511</enddate><creator>Dayal, Vijaylakshmi</creator><creator>Punith Kumar, V.</creator><creator>Hadimani, R. 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C.</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Magnetic Interaction and Electronic Transport in La0.4Bi0.6Mn0.5Ti0.5O3 Manganite</atitle><jtitle>IEEE transactions on magnetics</jtitle><stitle>TMAG</stitle><date>2015-11</date><risdate>2015</risdate><volume>51</volume><issue>11</issue><spage>1</spage><epage>4</epage><pages>1-4</pages><issn>0018-9464</issn><eissn>1941-0069</eissn><coden>IEMGAQ</coden><abstract>We report magnetic interactions and electronic transport properties in La 0.4 Bi 0.6 Mn 0.5 Ti 0.5 O 3 perovskite manganite synthesized using solid-state route. After characterizing the samples structurally, the systematic investigations of magnetic and electrical transport behaviors have been undertaken. It has been observed that at low temperatures near TC, the sample is magnetically frustrated leading to the second-order magnetic transition. A justification for the observed magnetic behavior has been explained based on Arrott's plot study. The resistivity as a function of temperature in the absence and the presence of applied magnetic field suggests semiconducting nature of the sample. The conduction of the charge carriers is explained using Shklovskii-Efros-type variable-range-hopping mechanism.</abstract><cop>New York</cop><pub>IEEE</pub><doi>10.1109/TMAG.2015.2433394</doi><tpages>4</tpages><oa>free_for_read</oa></addata></record> |
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subjects | Arrott Plots Hopping conduction Magnetic field measurement Magnetic fields Magnetic properties Magnetism Magnetization Magnetoelectronics Perovskite manganite SE-VRH mechanism Temperature Temperature measurement |
title | Magnetic Interaction and Electronic Transport in La0.4Bi0.6Mn0.5Ti0.5O3 Manganite |
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