Magnetoresistance and collective Coulomb blockade in super-lattices of ferromagnetic CoFe nanoparticles
R. P. Tan, J. Carrey, C. Desvaux, L.-M. Lacroix, P. Renaud, B., Chaudret, M. Respaud

TL;DR
This study investigates the transport and magnetoresistance properties of super-lattices of CoFe nanoparticles, revealing phenomena like Coulomb blockade, collective effects, and magnetic-field-induced transitions at low temperatures.
Contribution
It provides new insights into the magnetoresistance behavior and phase transitions in nanoparticle super-lattices, highlighting the role of paramagnetic states and collective Coulomb effects.
Findings
High-field magnetoresistance depends on magnetic field/temperature ratio.
Abrupt, hysteretic transitions between Coulomb blockade and conductive regimes.
Magnetic field influences transition voltages, inducing reversible or irreversible changes.
Abstract
We report on transport properties of millimetric super-lattices of CoFe nanoparticles surrounded by organic ligands. R(T)s follow R(T) = R_0.exp(T/T_0)^0.5 with T_0 ranging from 13 to 256 K. At low temperature I(V)s follow I=K[(V-V_T)/V_T]^ksi with ksi ranging 3.5 to 5.2. I(V) superpose on a universal curve when shifted by a voltage proportional to the temperature. Between 1.8 and 10 K a high-field magnetoresistance with large amplitude and a strong voltage-dependence is observed. Its amplitude only depends on the magnetic field/temperature ratio. Its origin is attributed to the presence of paramagnetic states present at the surface or between the nanoparticles. Below 1.8 K, this high-field magnetoresistance abruptly disappears and inverse tunnelling magnetoresistance is observed, the amplitude of which does not exceed 1%. At this low temperature, some samples display in their I(V)…
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