Emergent magnetic anisotropy in the cubic heavy-fermion metal CeIn3

被引:0
作者
Philip J. W. Moll
Toni Helm
Shang-Shun Zhang
Cristian D. Batista
Neil Harrison
Ross D. McDonald
Laurel E. Winter
B. J. Ramshaw
Mun K. Chan
Fedor F. Balakirev
Bertram Batlogg
Eric D. Bauer
Filip Ronning
机构
[1] Max-Planck-Institute for Chemical Physics of Solids,Microstructured Quantum Matter
[2] University of Tennessee,Department of Physics
[3] Oak Ridge National Laboratory,Quantum Condensed Matter Division and Shull
[4] National High Magnetic Field Laboratory,Wollan Center
[5] Laboratory for Solid State Physics,Laboratory for Atomic and Solid State Physics
[6] ETH Zurich,undefined
[7] Los Alamos National Laboratory,undefined
[8] Cornell University,undefined
来源
npj Quantum Materials | / 2卷
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摘要
Metals containing cerium exhibit a diverse range of fascinating phenomena including heavy fermion behavior, quantum criticality, and novel states of matter such as unconventional superconductivity. The cubic system CeIn3 has attracted significant attention as a structurally isotropic Kondo lattice material possessing the minimum required complexity to still reveal this rich physics. By using magnetic fields with strengths comparable to the crystal field energy scale, we illustrate a strong field-induced anisotropy as a consequence of non-spherically symmetric spin interactions in the prototypical heavy fermion material CeIn3. This work demonstrates the importance of magnetic anisotropy in modeling f-electron materials when the orbital character of the 4f wavefunction changes (e.g., with pressure or composition). In addition, magnetic fields are shown to tune the effective hybridization and exchange interactions potentially leading to new exotic field tuned effects in f-based materials.
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