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Tuning Low Temperature Physical Properties of CeNiGe3_{3} by Magnetic Field

Abstract

We have studied the thermal, magnetic, and electrical properties of the ternary intermetallic system CeNiGe3_{3} by means of specific heat, magnetization, and resistivity measurements. The specific heat data, together with the anisotropic magnetic susceptibility, was analyzed on the basis of the point charge model of crystalline electric field. The JJ\,=\,5/2 multiplet of the Ce3+^{3+} is split by the crystalline electric field (CEF) into three Kramers doublets, where the second and third doublet are separated from the first (ground state) doublet by Δ1\Delta_{1} \sim 100\,K and Δ2\Delta_{2} \sim 170\,K, respectively. In zero field CeNiGe3_{3} exhibits an antiferromangeic order below TNT_{N} = 5.0\,K. For \textbf{H}\,\parallel\,\textbf{a} two metamagnetic transitions are clearly evidenced between 2\,\sim\,4\,K from the magnetization isotherm and extended down to 0.4\,K from the magnetoresistance measurements. For \textbf{H}\,\parallel\,\textbf{a}, TNT_{N} shifts to lower temperature as magnetic field increases, and ultimately disappears at HcH_{c} \sim 32.5\,kOe. For H>HcH\,>\,H_{c}, the electrical resistivity shows the quadratic temperature dependence (Δρ=AT2\Delta\rho = A T^{2}). For HHcH \gg H_{c}, an unconventional TnT^{n}-dependence of Δρ\Delta\rho with n>2n > 2 emerges, the exponent nn becomes larger as magnetic field increases. Although the antiferromagnetic phase transition temperature in CeNiGe3_{3} can be continuously suppressed to zero, it provides an example of field tuning that does not match current simple models of Quantum criticality.Comment: accepted PR

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