Literature DB >> 21825698

Surface spin-glass freezing in interacting core-shell NiO nanoparticles.

E Winkler1, R D Zysler, M Vasquez Mansilla, D Fiorani, D Rinaldi, M Vasilakaki, K N Trohidou.   

Abstract

Magnetization and AC susceptibility measurements have been performed on ∼3 nm NiO nanoparticles in powder form. The results indicate that the structure of the particles can be considered as consisting of an antiferromagnetically ordered core, with an uncompensated magnetic moment, and a magnetically disordered surface shell. The core magnetic moments block progressively with decreasing temperature, according to the distribution of their anisotropy energy barriers, as shown by a broad maximum of the low field zero-field-cooled magnetization (M(ZFC)) and in the in-phase component χ' of the AC susceptibility, centred at ∼70 K. On the other hand, surface spins thermally fluctuate and freeze in a disordered spin-glass-like state at much lower temperature, as shown by a peak in M(ZFC) (at 17 K, for H = 50 Oe) and in χ'. The temperature of the high temperature χ' peak changes with frequency according to the Arrhenius law; instead, for the low temperature maximum a power law dependence of the relaxation time was found, τ = τ(0)(T(g)/(T(ν)-T(g)))(α), where α = 8, like in spin glasses, τ(0) = 10(-12) s and T(g) = 15.9 K. The low temperature surface spin freezing is accompanied by a strong enhancement of magnetic anisotropy, as shown by the rapid increase of coercivity and high field susceptibility. Monte Carlo simulations for core/shell antiferromagnetic particles, with an antiferromagnetic core and a disordered shell, reproduce the qualitative behaviour of the temperature dependence of the coercivity. Interparticle interactions lead to a shift to a high temperature of the distribution of the core moment blocking temperature and to a reduction of magnetization dynamics.

Entities:  

Year:  2008        PMID: 21825698     DOI: 10.1088/0957-4484/19/18/185702

Source DB:  PubMed          Journal:  Nanotechnology        ISSN: 0957-4484            Impact factor:   3.874


  7 in total

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Journal:  J Phys Chem C Nanomater Interfaces       Date:  2014-11-06       Impact factor: 4.126

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3.  Strong Pinned-Spin-Mediated Memory Effect in NiO Nanoparticles.

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Authors:  Sadaf Mushtaq; Khuram Shahzad; Muhammad Rizwan; Anwar Ul-Hamid; Bilal Haider Abbasi; Waqas Khalid; Muhammad Atif; Nafees Ahmad; Zulqurnain Ali; Rashda Abbasi
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7.  Huge Inverse Magnetization Generated by Faraday Induction in Nano-Sized Au@Ni Core@Shell Nanoparticles.

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  7 in total

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