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Specific features of magnetoresistance during the antiferromagnet—paramagnet transition in Tm1 − xYb x B12

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Abstract

The transverse magnetoresistance Δ/ρ(H, T) of Tm1 − xYb x B12 single crystals is studied in the ytterbium concentration range corresponding to the antiferromagnet-paramagnet transition in a magnetic field up to 80 kOe at low temperatures. A magnetic H-T phase diagram is constructed for the antiferromagnetic state of substitutional Tm1 − xYb x B12 solid solutions with x ≤ 0.1. The contributions to the magnetoresistance in the antiferromagnetic and paramagnetic phases of the dodecaborides under study are separated. Along with negative quadratic magnetoresistance -Δ/ρ ∝ H2, the magnetically ordered phase of these compounds is found to have component Δ/ρ ∝ H that linearly changes in a magnetic field. The negative contribution to the magnetoresistance of Tm1 − xYb x B12 is analyzed in terms of the Yosida model for a local magnetic susceptibility.

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Correspondence to N. E. Sluchanko.

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Original Russian Text © N.E. Sluchanko, A.N. Azarevich, A.V. Bogach, V.V. Glushkov, S.V. Demishev, A.V. Levchenko, V.B. Filippov, N.Yu. Shitsevalova, 2013, published in Zhurnal Eksperimental’noi i Teoreticheskoi Fiziki, 2013, Vol. 143, No. 5, pp. 998–1004.

The article is based on a preliminary report delivered at the 36th Conference on Low-Temperature Physics (St. Petersburg, July 2–6, 2012).

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Sluchanko, N.E., Azarevich, A.N., Bogach, A.V. et al. Specific features of magnetoresistance during the antiferromagnet—paramagnet transition in Tm1 − xYb x B12 . J. Exp. Theor. Phys. 116, 866–871 (2013). https://doi.org/10.1134/S1063776113050117

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