2015
DOI: 10.1016/j.jmmm.2014.03.044
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Martensitic and austenitic transformations in core-surface cubic nanoparticles

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Cited by 5 publications
(10 citation statements)
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“…2) is enlarged to simple cubic lattice (sc) in 3D for a cubic nanoparticle. For the number of shells in both structures, each lattice is related to the radius (R) of the nanoparticle [27][28][29]. Therefore, the value of R contains a number of shells and the size of a nanoparticle increases as the number of shells increases.…”
Section: Definition Of a Nanoparticle With Core/surface Morphologymentioning
confidence: 99%
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“…2) is enlarged to simple cubic lattice (sc) in 3D for a cubic nanoparticle. For the number of shells in both structures, each lattice is related to the radius (R) of the nanoparticle [27][28][29]. Therefore, the value of R contains a number of shells and the size of a nanoparticle increases as the number of shells increases.…”
Section: Definition Of a Nanoparticle With Core/surface Morphologymentioning
confidence: 99%
“…By means of mean-field theory (MFT) and Monte Carlo (MC) simulations, magnetostructural phase transitions in some alloys were described via degenerate BEG models in terms of magnetoelastic interactions [31]. In the light of above applications, we have recently used the ordinary BEG model for the investigation of MT/AT transitions in NP systems and observed the behaviours of the MTH loops [28,29]. In the following, we mention briefly the definition of the BEG Hamiltonian and show clearly how it is modified for the C/S NPs with hexagonal and square lattice structures.…”
Section: Blume-emery-griffiths Modelmentioning
confidence: 99%
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“…For these particles the correlations between nearest-neighbors are significant to establish boundaries between core ( ) and surface ( ) parts with different magnetic properties. A similar approach has recently been used by us to investigate the hysteretic splitting of / NPs [31,32]. In the presence of an external magnetic field, we have taken into account only even interactions (or dipolar, quadrupolar, and single-ion anisotropy) between Ising spins in , interface ( ), and parts within the nanoparticle.…”
Section: Introductionmentioning
confidence: 99%
“…For a complete description of phase transitions arising in bulk systems, the full BEG Hamiltonian with both even and odd interaction terms was studied using various techniques [34][35][36][37][38][39]. But the odd term has not been considered for the analysis of structural transitions in NPs presented in [31,32]. By incorporating odd interaction the PA formalism may provide a theoretical framework for the EB effect and the asymmetry of the hysteresis loops observed in experiments made on a single (or independent) composite nanoparticle.…”
Section: Introductionmentioning
confidence: 99%