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Chiral criticality in doped Mn_(1-y)Fe_ySi compounds

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arxiv 1104.1119 v2 pith:X4YOG2W7 submitted 2011-04-06 cond-mat.mtrl-sci

Chiral criticality in doped Mn_(1-y)Fe_ySi compounds

classification cond-mat.mtrl-sci
keywords chiralac-susceptibilitycompoundscrossoverhighlypartiallyspinstate
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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The critical spin fluctuations in doped compounds Mn$_{1-y}$Fe$_y$Si have been studied by means of ac-susceptibility measurements, polarized neutron small angle scattering and spin echo spectroscopy. It is shown that these compounds undergo the transition from the paramagnetic to helimagnetic phase through continuous, yet well distinguishable crossovers: (i) from paramagnetic to partially chiral, (ii) from partially chiral to highly chiral fluctuating state. The crossover points are identified on the basis of combined analysis of the temperature dependence of ac-susceptibility and polarized SANS data. The whole transition is marked by two inflection point of the temperature dependence of ac-susceptibility: the upper one corresponds to the crossover to partially chiral state at $T^*$, where the inverse correlation length $\kappa \approx 2 k$, the lower one corresponds to the transition to the spin helix structure. The intermediate crossover to the highly chiral phase is observed at the inflection point $T_k$ of the first derivative of ac-susceptibility, where $\kappa \approx k$. The temperature crossovers to the highly chiral fluctuating state is associated with the enhancing influence of the Dzyaloshinskii-Moria interaction close to $T_c$.

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