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Distinct domain switching in Nd0.05Ce0.95CoIn5 at low and high fields.

D G Mazzone1, R Yadav2, M Bartkowiak2

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This study reveals how magnetic fields alter magnetic domains in Nd$_{0.05}$Ce$_{0.95}$CoIn$_{5}$ during a quantum phase transition. The findings show distinct domain population changes in different magnetic phases, impacting superconductivity.

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Area of Science:

  • Condensed Matter Physics
  • Quantum Materials Science
  • Magnetism and Superconductivity

Background:

  • Nd$_{0.05}$Ce$_{0.95}$CoIn$_{5}$ exhibits a quantum phase transition between two antiferromagnetic phases within a superconducting state.
  • Understanding the interplay between magnetism and superconductivity is crucial for novel quantum materials.

Purpose of the Study:

  • To investigate the influence of magnetic field rotation on magnetic domain populations in different phases of Nd$_{0.05}$Ce$_{0.95}$CoIn$_{5}$ near a quantum phase transition.
  • To elucidate the role of spin-orbit interactions and electronic structure changes in mediating the coupling between magnetism and superconductivity.

Main Methods:

  • Neutron diffraction was employed to probe the magnetic structure and domain populations.
  • Systematic rotation of the magnetic field in the tetragonal basal plane was performed.

Main Results:

  • Magnetic domain populations respond differently to field rotation in the low-field SDW-phase and the high-field Q-phase.
  • A sharp switch in domain population occurs in the Q-phase for fields near the a-axis, unlike the weak dependence in the SDW-phase.
  • Anisotropic spin susceptibility, originating from spin-orbit interactions, differs qualitatively between the two magnetic phases.

Conclusions:

  • The quantum phase transition in Nd$_{0.05}$Ce$_{0.95}$CoIn$_{5}$ involves a significant change in electronic structure.
  • This electronic structure modification alters the coupling between magnetism and superconductivity in the Q-phase, providing insights into quantum material behavior.