Network


Latest external collaboration on country level. Dive into details by clicking on the dots.

Hotspot


Dive into the research topics where Arun S. Prasad is active.

Publication


Featured researches published by Arun S. Prasad.


IEEE Transactions on Magnetics | 2010

Nanocrystalline Spinel Mn

P. Predeep; Arun S. Prasad; S. N. Dolia; M. S. Dhawan; D. Das; S. K. Chaudhuri; Vipasha Ghose

We have synthesized a series of nanocrystalline ferrite samples with the composition MnxCu1-xFe2O4 (x=0.2, 0.4, 0.6, 0.8) by an advanced sol-gel auto-combustion method. The X-ray diffraction patterns confirm the existence of single-phase cubic spinel crystal structure of ferrites with lattice parameter ranges from 8.395 ? to 8.45 ?. We report the equilibrium radii for tetrahedral and octahedral sites in the unit cells and the estimated cation distribution over the two sites of nanocrystalline MnxCu1-xFe2O4. We also estimate the oxygen positional parameter as 0.389. The positron annihilation life time spectroscopic studies were carried out for all the samples and analyzed the variation of life time parameters ?1; I1, ?2; I2 and the mean life time ?m to elucidate the defect structure of the nanocrystalline MnxCu1-xFe2O4. We found that the overall vacant type defects fill up as the Mn2+ ion concentration, x, increases. The value of ?1 varies from 150 ps to 170 ps and that of ?2 varies from 295 ps to 335 ps, which are the characteristic values for nanocrystalline samples, indicating the presence of intergranular as well as surface-diffused vacancies in the crystal structure.


Radiation Effects and Defects in Solids | 2011

_{x}

S. N. Dolia; M. S. Dhawan; Arun S. Prasad; S. Kumar; Arvind Samariya; R.K. Singhal; Ravi Kumar

The effects of 200 MeV Ag15+ ion irradiation on the magnetic behavior of nano particles of Co0.4Zn0.6Fe2O4 have been studied using the field, temperature and time-dependent magnetization measurements. Rietveld profile refinement of the XRD patterns confirms the formation of a cubic spinel structure of the specimens retaining the spinel structure upon irradiation. The Ag15+ ion irradiation of the sample causes an appreciable enhancement in the saturation magnetization, coercivity, and remanent magnetization. These observations can be attributed to a slight increase in the particle size due to the heat evolved during the irradiation, cation redistribution, and irradiation-induced modifications on the surface states of the nanoparticles.


Radiation Effects and Defects in Solids | 2013

Cu

S. N. Dolia; P. K. Sharma; Arvind Samariya; S. P. Pareek; Arun S. Prasad; M. S. Dhawan; Sudhish Kumar; K. Asokan

The present investigation aims at studying the effect of swift heavy ion irradiation on the structural, magnetic and dielectric properties of the nanocrystalline Cu0.2Zn0.8Fe2O4 spinel ferrite. The sample was synthesised using the sol–gel technique and then irradiated with the 200 MeV Ag+15 ion beam. The Rietveld profile refinement of the X-ray diffraction patterns confirmed the cubic spinel structure of samples. The spherical morphology revealed through transmission electron microscopy images was consistent with the crystalline diameter. The overall magnetic behaviour pointed towards superparamagnetic relaxation at room temperature along with the significant increase in saturation magnetisation, coercivity and blocking temperature after irradiation. This could be attributed to the slight increase in the particle size and ion-induced modifications on the surface states of the nanoparticles. The enhancement in dielectric constant and loss tangent after irradiation could be attributed to the available Fe+2 ↔ Fe+3 and/or Zn+2 ↔ Zn+3 ion polarisation at the octahedral site, especially on grain boundaries of the sample.


THERMOPHYSICAL PROPERTIES OF MATERIALS AND DEVICES: IVth National Conference on#N#Thermophysical Properties ‐ NCTP'07 | 2008

_{1 - x}

Arun S. Prasad; S. N. Dolia; M. S. Dhawan; P. Predeep

Optical energy band gap of nanocrystalline NiCr0.8Fe1.2O4 ferrite have been studied. The nanocrystalline NiCr0.8Fe1.2O4 ferrite have been synthesized using sol‐gel technique. X‐ray diffraction pattern confirms the formation of spinel structure in single phase and the average particle size is 4 nm. The energy band gap measurements of nanocrystalline NiCr0.8Fe1.2O4 ferrite in pellet form have been carried out by absorption spectra using double beam spectrophotometer. A pellet of nanoparticle ferrite was made under a load of 10 tons. From the analysis of absorption spectra, nanocrystalline NiCr0.8Fe1.2O4 ferrite have been found to have energy band gap of 3.2 eV at room temperature.


Radiation Effects and Defects in Solids | 2013

Fe

S. N. Dolia; S. P. Pareek; Arvind Samariya; P. K. Sharma; Arun S. Prasad; M. S. Dhawan; Sudhish Kumar; K. B. Sharma; K. Asokan

Nanocrystalline samples of ZnCr0.4Fe1.6O4 ferrite were synthesized by the advanced sol–gel method to investigate the effect of 200 MeV Ag+15 ion irradiation on the cation distribution, magnetic and dielectric properties. Rietveld profile refinement of the X-ray diffraction (XRD) patterns confirms the single-phase cubic spinel structure of the specimens. The irradiated sample retains the cubic spinel structure with a slight increase in the lattice parameters and the average crystallite size. Temperature- and field-dependent dc magnetization studies show an appreciable enhancement in the saturation magnetization and blocking temperature of the irradiated samples, which could be attributed to the slight increase in the particle size due to the heat evolved during irradiation. Subsequently, the rearrangement of cations in the lattice structure and the ion-induced modifications on the surface states of the nanoparticles could be accountable. The room temperature dielectric constant and the loss tangent in the frequency range 75 kHz–10 MHz revealed the normal frequency dispersion. The increase in ϵr and tan δ on irradiation could be attributed to the slight crystal growth and hence the availability of the sufficient number of Fe2+ and/or Zn3+ ions particularly at the octahedral site on the grain boundaries, showing a fair agreement with the magnetization results.


Journal of Sol-Gel Science and Technology | 2013

_{2}

Arun S. Prasad; S. N. Dolia; S. P. Pareek; Arvind Samariya; P. K. Sharma; M. S. Dhawan

The nanoparticles of NiCrxFe2−xO4 were synthesized through sol–gel reactions involving nitrates of Ni, Cr and Fe in an aqueous medium containing citric acid. The cubic spinel structure in single phase with nanometric crystallite size of ~5 nm, the spherical morphology and magnetic relaxations were examined through XRD, TEM and Mossbauer techniques. The abnormal occurrence of finite remanance (Mr) and coercivity (Hc) resulted in the room temperature dc magnetization measurements for the small particles authenticate the ferrimagnetic regime, as proposed by the room temperature Mossbauer results of the samples, with a proximate superparamagnetic regime still at lower particle volumes. This could be attributed to the antiferromagnetic spin interactions of chromium ions at octahedral sites and subsequently the over-occupancy of the rest of the cations at tetrahedral sites. In justification to this, the magnetocrystalline anisotropy constant, K, is estimated to have value relatively high of the order of 107 erg/cm3 at room temperature for all studied concentrations.


International Journal of Modern Physics B | 2011

O

Arun S. Prasad; M. S. Dhawan; S. N. Dolia; Arvind Samariya; V. R. Reddy; R.K. Singhal; P. Predeep

The editorial board discovered that the data points in several sections of the Mossbauer spectra as given in Figs. 3(a) and 3(b) are exactly identical. This is impossible and nonphysical for the measurement of two different samples (or for that matter not even for the same sample!). The only conclusion we can draw from this figure is that some of the data is fabricated. As a result, the results and conclusions as described in the paper are unacceptable. This article is retracted from its publication in Int. J. Mod. Phys. B.


PROCEEDING OF INTERNATIONAL CONFERENCE ON RECENT TRENDS IN APPLIED PHYSICS AND MATERIAL SCIENCE: RAM 2013 | 2013

_{4}

P. K. Sharma; Arvind Samariya; S. P. Pareek; M. S. Dhawan; Arun S. Prasad; S. N. Dolia

Series of nanocrystalline Cu1-xZnxFe2O4 (x=0.2, 0.4, 0.6 and 0.8) spinel ferrites were synthesized using advanced sol-gel technique. The XRD measurements confirm the formation of cubic spinel structure in single phase for the entire sample. The average particle sizes of 14-18 nm with lattice parameter ranges from 8.38A to 8.52A were estimated. Cation distribution over the two sites of nanocrystalline Cu1-xZnxFe2O4 series, estimated from X-ray diffraction measurements is reported. The lattice parameter ‘a’ is found to be increased with increase in Zn concentration, which is attributed to the larger ionic radius of Zn compared to that of Cu.


PROCEEDING OF INTERNATIONAL CONFERENCE ON RECENT TRENDS IN APPLIED PHYSICS AND MATERIAL SCIENCE: RAM 2013 | 2013

Ferrites—Synthesis and Structural Elucidation Using X-Ray Diffraction and Positron Annihilation Techniques

S. P. Pareek; Arvind Samariya; P. K. Sharma; Arun S. Prasad; M. S. Dhawan; S. N. Dolia; K. B. Sharma

Nanocystalline Cu0.2Ni0.8Fe2O4 of average particle size 3 nm was synthesized through chemical coprecipitation method followed by annealing at various temperatures. The formation of cubic spinel structure in single phase and the crystallite growth was confirmed using XRD. The dielectric behavior as a function of frequency in the range 75 kHz to 10 MHz was studied at room temperature. Both dielectric constant (e′) and the loss factor (tanδ) decreases with frequency for all samples. This decrease in the values could be explained on the basis of available ferrous, i.e. Fe2+, ions at octahedral sites such that beyond a certain frequency of applied electric field the electronic exchange between the ferrous and ferric ions i.e. Fe2+↔Fe3+ cannot follow the applied alternating electric field.


International Journal of Modern Physics: Conference Series | 2013

Magnetization enhancement in nanocrystalline Co0.4Zn0.6Fe2O4 by 200 MeV Ag15+ ion irradiation

Arvind Samariya; S. P. Pareek; P. K. Sharma; Arun S. Prasad; M. S. Dhawan; S. N. Dolia; K. B. Sharma

Dielectric behaviour of Nanocrystalline CaFe2O4 ferrite synthesized by advanced sol- gel method has been investigated as a function of frequency at different temperatures. Rietveld profile refinement of the XRD pattern confirms formation of cubic spinel structure of the specimen.The dispersion in dielectric behavior of CaFe2O4ferrite sample has been observed in the temperature range of 100-250˚C as a function of frequency in the range 75 kHz to 10 MHz Both the real value of dielectric constant (ɛ′) and the dielectric loss factor (tanδ) decrease with frequency. This decrease in the values of ɛ′ and tanδ could be explained on the basis of available ferrous, i.e. Fe2+, ions on octahedral sites such that beyond a certain frequency of applied electric field the electronic exchange between the ferrous and ferric ions i.e. Fe2+↔Fe3+ cannot follow the applied alternating electric field.

Collaboration


Dive into the Arun S. Prasad's collaboration.

Top Co-Authors

Avatar

S. N. Dolia

University of Rajasthan

View shared research outputs
Top Co-Authors

Avatar

M. S. Dhawan

University of Rajasthan

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar

P. K. Sharma

University of Rajasthan

View shared research outputs
Top Co-Authors

Avatar

S. P. Pareek

University of Rajasthan

View shared research outputs
Top Co-Authors

Avatar

R.K. Singhal

University of Rajasthan

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar

P. Predeep

National Institute of Technology Calicut

View shared research outputs
Top Co-Authors

Avatar

S. Kumar

Jamia Millia Islamia

View shared research outputs
Researchain Logo
Decentralizing Knowledge