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de Haas-van Alphen oscillations and anomalous Hall effect in topological nodal line semimetal Ni0.5Co0.5Se
Sharadnarayan Pradhan1, Sanand Kumar Pradhan1, Priyanath Mal2
1Department of Pure and Applied Physics, Guru Ghasidas Vishwavidyalaya, Koni, Bilaspur 495009, Chhattisgarh, India.
Abstract:
Here, we present a systematic study of de Haas-van Alphen oscillations (dHvAs), topological phase, and anomalous Hall effect (AHE) of Ni0.5Co0.5Se single crystal. Low-temperature longitudinal resistivityρxx(T) under different magnetic fields exhibits an upturn, indicative of a semimetallic phase. Fitting of the zero-fieldρxx(T) data with the Bloch-Gruneisen-Mott model including Kondo resistivity term reveals multiple scattering mechanisms, which is substantiated by the deviation from Kohler's rule of the magnetoresistance curves. AtT= 2 K and low magnetic fields, the observed cusp-like features indicate weak antilocalization effect, quantitatively described using a modified Hikami-Larkin-Nagaoka equation. Temperature dependent magnetization (M-T) curves and magnetic field dependent isothermal magnetization (M-B) curves reveal the existence of weak ferromagnetic phase at very low temperatures. The weak field magnetoconductivity data follows the -ln(B) dependency and the observed strong high field dHvA oscillations in (M-B) curves, provide the evidence of non-zero Berry phase, confirms the non-trivial band topology. These signatures indicate that Ni0.5Co0.5Se is a topological nodal line semimetal. In Hall resistivity data, significant AHE is observed at 2 K to 5 K and the linear behavior of the anomalous Hall resistivity (ρxyA) withρxxsignifies that the extrinsic skew scattering mechanism contributes to AHE in Ni0.5Co0.5Se.
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