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Magnetic characterization of radio frequency heat affected micron size Fe3O4 powders: a bio-application perspective

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dc.contributor.author Roul, BK
dc.contributor.author Mishra, DK
dc.contributor.author Ray, M
dc.contributor.author Sahu, DR
dc.contributor.author Mishra, PK
dc.contributor.author Srinivasu, VV
dc.contributor.author Pradhan, AK
dc.date.accessioned 2011-11-30T10:12:58Z
dc.date.available 2011-11-30T10:12:58Z
dc.date.issued 2009-05
dc.identifier.citation Roul, BK, Mishra, DK, Ray, M et al. 2009. Magnetic characterization of radio frequency heat affected micron size Fe3O4 powders: a bio-application perspective. Journal of Nanoscience and Nanotechnology, Vol 9(5), pp 3204-3029 en_US
dc.identifier.issn 1533-4880
dc.identifier.uri http://www.ingentaconnect.com/content/asp/jnn/2009/00000009/00000005/art00060
dc.identifier.uri http://hdl.handle.net/10204/5351
dc.description Copyright: 2009 American Scientific Publishers. This is an ABSTRACT ONLY en_US
dc.description.abstract Micron size Fe3O4 powders were chemically prepared and processed by radio frequency (13.56 MHz) oxygen plasma irradiation technique at different elevated temperatures using low radio frequency (RF) power level. Low magnetic field RF superconducting quantum interference device (SQUID) magnetization studies were performed up to a maximum magnetic field of 100 Oe, which was well below the magnetic field tolerance factor of human beings and at different temperatures (down to 5 K). Heat-treated powders in RF oxygen plasma showed significant changes in blocking temperature, magnetization and susceptibility, which are important parameters for bio-applications. It is observed that blocking temperature is decreased under identical RF heat treatment in oxygen plasma and noted to be dependent on average particle size. Microscopic rise in electron temperature during RF heating may likely to enhance the electron-hopping rate between Fe(+2) and Fe(+3) in the octahedral site of Fe3O4 molecular crystal structure, which in turn exhibit changes in blocking temperature including low field magnetization and susceptibility. These properties of Fe3O4 fine powder are likely to play important role in generating and processing biocompatible Ferro-fluid down to nanoscopic size for biomaterials applications. en_US
dc.language.iso en en_US
dc.relation.ispartofseries Workflow request;3767
dc.subject Magnetite Fe3O4 en_US
dc.subject RF heat treatment en_US
dc.subject Blocking temperature en_US
dc.subject Magnetization en_US
dc.subject Nanoscience en_US
dc.subject Nanotechnology en_US
dc.title Magnetic characterization of radio frequency heat affected micron size Fe3O4 powders: a bio-application perspective en_US
dc.type Article en_US
dc.identifier.apacitation Roul, B., Mishra, D., Ray, M., Sahu, D., Mishra, P., Srinivasu, V., & Pradhan, A. (2009). Magnetic characterization of radio frequency heat affected micron size Fe3O4 powders: a bio-application perspective. http://hdl.handle.net/10204/5351 en_ZA
dc.identifier.chicagocitation Roul, BK, DK Mishra, M Ray, DR Sahu, PK Mishra, VV Srinivasu, and AK Pradhan "Magnetic characterization of radio frequency heat affected micron size Fe3O4 powders: a bio-application perspective." (2009) http://hdl.handle.net/10204/5351 en_ZA
dc.identifier.vancouvercitation Roul B, Mishra D, Ray M, Sahu D, Mishra P, Srinivasu V, et al. Magnetic characterization of radio frequency heat affected micron size Fe3O4 powders: a bio-application perspective. 2009; http://hdl.handle.net/10204/5351. en_ZA
dc.identifier.ris TY - Article AU - Roul, BK AU - Mishra, DK AU - Ray, M AU - Sahu, DR AU - Mishra, PK AU - Srinivasu, VV AU - Pradhan, AK AB - Micron size Fe3O4 powders were chemically prepared and processed by radio frequency (13.56 MHz) oxygen plasma irradiation technique at different elevated temperatures using low radio frequency (RF) power level. Low magnetic field RF superconducting quantum interference device (SQUID) magnetization studies were performed up to a maximum magnetic field of 100 Oe, which was well below the magnetic field tolerance factor of human beings and at different temperatures (down to 5 K). Heat-treated powders in RF oxygen plasma showed significant changes in blocking temperature, magnetization and susceptibility, which are important parameters for bio-applications. It is observed that blocking temperature is decreased under identical RF heat treatment in oxygen plasma and noted to be dependent on average particle size. Microscopic rise in electron temperature during RF heating may likely to enhance the electron-hopping rate between Fe(+2) and Fe(+3) in the octahedral site of Fe3O4 molecular crystal structure, which in turn exhibit changes in blocking temperature including low field magnetization and susceptibility. These properties of Fe3O4 fine powder are likely to play important role in generating and processing biocompatible Ferro-fluid down to nanoscopic size for biomaterials applications. DA - 2009-05 DB - ResearchSpace DP - CSIR KW - Magnetite Fe3O4 KW - RF heat treatment KW - Blocking temperature KW - Magnetization KW - Nanoscience KW - Nanotechnology LK - https://researchspace.csir.co.za PY - 2009 SM - 1533-4880 T1 - Magnetic characterization of radio frequency heat affected micron size Fe3O4 powders: a bio-application perspective TI - Magnetic characterization of radio frequency heat affected micron size Fe3O4 powders: a bio-application perspective UR - http://hdl.handle.net/10204/5351 ER - en_ZA


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