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Coexistence of ferromagnetic ordering and cluster spin-glass behavior in a nickel-vanadium hexacyanoferrate Prussian blue analogue molecular magnet.

Created on 09 Sep 2026

Authors

Nilasha Maiti, Pramod Bhatt, M D Mukadam, Sher Singh Meena, M K Sharma, Truc Dong Thanh Nguyen, Naoto Tsuchiya, Katsuya Inoue

Published in

Dalton transactions (Cambridge, England : 2003). Sep 09, 2026. Epub Sep 09, 2026.

Abstract

We report the coexistence of long-range ferromagnetic ordering and cluster spin-glass behavior in a face-centered cubic nickel vanadium hexacyanoferrate molecular magnet (space group Fm3m, lattice parameter of ∼10.14 Å). The dc magnetization measurements exhibit Curie-Weiss behavior in the high-temperature paramagnetic region, followed by a transition to long-range ferromagnetic ordering below the Curie temperature (TC) of ≈18 K. This ferromagnetic ground state is further confirmed by neutron depolarization measurements, providing evidence of the presence of ferromagnetic domains. The emergence of ferromagnetic ordering in the compound could be attributed to Ni2+ incorporation, which enhances the Ni-NC-Fe superexchange interaction through effective orbital overlap between Ni eg, cyanide π*, and Fe t2g states, thereby stabilizing long-range ferromagnetic ordering. At lower temperatures, the compound undergoes a crossover to a cluster spin-glass state, characterized by a clear bifurcation between zero-field-cooled and field-cooled magnetization curves. The frequency-dependent ac susceptibility measurements further confirm the cluster spin-glass nature of the compound. The dynamical behavior of the spin freezing phenomenon has been analyzed using Arrhenius, Vogel-Fulcher, and power-law models, yielding characteristic parameters associated with cooperative spin dynamics and inter-cluster interactions. The fitted values (using the Vogel-Fulcher law) of τ0 and Ea/kB are found to be ∼6.7 × 10-6 s and ∼6 K for the compound. Furthermore, the fitting of values using the power law yields τ0 = 7.58 × 10-10 s and ≈ 5.2, falling within the typical range of spin-glass systems.

PMID:
42714303
Bibliographic data and abstract were imported from PubMed on 09 Sep 2026.

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