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Dive into the research topics where A.S. Mahapatra is active.

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Featured researches published by A.S. Mahapatra.


Journal of Applied Physics | 2018

Magnetic properties and bio-medical applications in hyperthermia of lithium zinc ferrite nanoparticles integrated with reduced graphene oxide

A. Mallick; A.S. Mahapatra; A. Mitra; J.M. Greneche; R. S. Ningthoujam; P.K. Chakrabarti

Nanoparticles of Zn substituted lithium ferrite (Li0.31Zn0.38Fe2.31O4, LZFO) synthesized by the sol-gel route are successfully dispersed in layers of reduced graphene oxide (RGO) during the course of preparation. The analysis of X-ray diffractograms confirms the desired crystallographic phase of the nanocomposite sample of LZFO-RGO. The results of field emission scanning electron microscopy and high resolution transmission electron microscopy are consistent with the presence of dispersed nanoparticles in different layers of graphene oxide. Structural information obtained from selected area electron diffraction and nanocrystalline fringe patterns agree well with those obtained from X-ray diffractogram analysis. Mossbauer spectra recorded at 300 and 77 K suggest the presence of a fraction of superparamagnetic particles together with ferrimagnetic particles. Static magnetic measurements include observation of hysteresis loops at 300 and 5 K, magnetization vs. temperature curves under zero field cooling and field cooling conditions. Saturation magnetizations, coercive field, and saturation to remanence ratio are also evaluated. To explore the suitability of this nanocomposite for hyperthermia application, inductive heating of LZFO and LZFO-RGO is measured at different concentrations of nanoparticles. Interestingly, the inductive heating rate of LZFO nanoparticles is enhanced in the nanocomposite phase of LZFO-RGO, suggesting their high potential for hyperthermia therapy in cancer treatment.Nanoparticles of Zn substituted lithium ferrite (Li0.31Zn0.38Fe2.31O4, LZFO) synthesized by the sol-gel route are successfully dispersed in layers of reduced graphene oxide (RGO) during the course of preparation. The analysis of X-ray diffractograms confirms the desired crystallographic phase of the nanocomposite sample of LZFO-RGO. The results of field emission scanning electron microscopy and high resolution transmission electron microscopy are consistent with the presence of dispersed nanoparticles in different layers of graphene oxide. Structural information obtained from selected area electron diffraction and nanocrystalline fringe patterns agree well with those obtained from X-ray diffractogram analysis. Mossbauer spectra recorded at 300 and 77 K suggest the presence of a fraction of superparamagnetic particles together with ferrimagnetic particles. Static magnetic measurements include observation of hysteresis loops at 300 and 5 K, magnetization vs. temperature curves under zero field cooling and f...


Bulletin of Materials Science | 2018

Magnetic measurements, Raman and infrared spectra of metal–ligand complex derived from \(\hbox {CoCl}_{2}\cdot \hbox {6H}_{2}\hbox {O}\) and 2-benzoyl pyridine

Shirsendu Datta; A.S. Mahapatra; P Sett; Manash Ghosh; Prabal Kumar Mallick; P.K. Chakrabarti

Nanocrystalline complex of CoCl2·6H2O-2\documentclass[12pt]{minimal} \usepackage{amsmath} \usepackage{wasysym} \usepackage{amsfonts} \usepackage{amssymb} \usepackage{amsbsy} \usepackage{mathrsfs} \usepackage{upgreek} \setlength{\oddsidemargin}{-69pt} \begin{document}


Journal of Magnetism and Magnetic Materials | 2013

Multiferroic behavior, enhanced magnetization and exchange bias effect of Zn substituted nanocrystalline LaFeO3 (La(1−x)ZnxFeO3, x=0.10, and 0.30)

K. Mukhopadhyay; A.S. Mahapatra; P.K. Chakrabarti


Materials Research Bulletin | 2016

Effect of cation distribution on the magnetic and hyperfine behaviour of nanocrystalline Co doped Ni–Zn ferrite (Ni0.4Zn0.4Co0.2Fe2O4)

Madhumita Dalal; A. Mallick; A.S. Mahapatra; A. Mitra; A. Das; Dipankar Das; P.K. Chakrabarti

\hbox {CoCl}_{2}\cdot 6\hbox {H}_{2}\hbox {O}{-}2


Physica B-condensed Matter | 2014

Enhanced magneto-electric property of GaFeO3 in Ga(1−x)ZnxFeO3 (x=0, 0.05, 0.10)

K. Mukhopadhyay; A.S. Mahapatra; P.K. Chakrabarti


Journal of Magnetism and Magnetic Materials | 2016

Soft magnetic property and enhanced microwave absorption of nanoparticles of Co0.5Zn0.5Fe2O4 incorporated in MWCNT

A. Mallick; A.S. Mahapatra; A. Mitra; P.K. Chakrabarti

\end{document}-benzoyl pyridine is prepared by chemical route. Each component of the desired complex is identified by analysing the X-ray diffractograms. Energy-dispersive X-ray analysis (EDX) data confirmed the presence of the desired elements of the sample. Theoretical optimized structure of the complex was derived using ab initio density functional level of theory (DFT) method of calculation. The average nanocrystallite size estimated from the XRD data is ∼\documentclass[12pt]{minimal} \usepackage{amsmath} \usepackage{wasysym} \usepackage{amsfonts} \usepackage{amssymb} \usepackage{amsbsy} \usepackage{mathrsfs} \usepackage{upgreek} \setlength{\oddsidemargin}{-69pt} \begin{document}


Materials Letters | 2016

Enhanced magnetic property and phase transition in Ho3+ doped LaFeO3

A.S. Mahapatra; A. Mitra; A. Mallick; Mainak Ghosh; P.K. Chakrabarti


Ceramics International | 2016

XRD, HRTEM, magnetic, dielectric and enhanced microwave reflection loss of GaFeO3 nanoparticles encapsulated in multi-walled carbon nanotubes

A.S. Mahapatra; A. Mitra; A. Mallick; P.K. Chakrabarti

\sim


Journal of Magnetism and Magnetic Materials | 2015

Modulated magneto-dielectric property and exchange bias effect of BiFeO3 incorporated in (BiFeO3)0.50 (Li0.30Zn0.35 Fe2.35O4)0.50 nanocomposite

K. Mukhopadhyay; A.S. Mahapatra; P.K. Chakrabarti


Ceramics International | 2018

Improved magneto-electric properties of LaFeO3 in La0.8Gd0.2Fe0.97Nb0.03O3

A. Mitra; A.S. Mahapatra; A. Mallick; A. Shaw; N. Bhakta; P.K. Chakrabarti

\end{document}43 nm. Static magnetic property of the complex is studied in the temperature range from 300 K down to 14 K. The estimated magnetic moment of the complex is high when compared to that of the free ion magnetic moment of Co2+\documentclass[12pt]{minimal} \usepackage{amsmath} \usepackage{wasysym} \usepackage{amsfonts} \usepackage{amssymb} \usepackage{amsbsy} \usepackage{mathrsfs} \usepackage{upgreek} \setlength{\oddsidemargin}{-69pt} \begin{document}

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A. Mitra

University of Burdwan

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A. Shaw

University of Burdwan

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Manash Ghosh

Indian Association for the Cultivation of Science

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J.M. Greneche

Centre national de la recherche scientifique

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