Glassy Relaxation Dynamics in the Two-Dimensional Heavy Fermion Antiferromagnet CeSiI

  • Kierstin Torres
  • , Joon Young Park
  • , Victoria A. Posey
  • , Michael E. Ziebel
  • , Claire E. Casaday
  • , Kevin J. Anderton
  • , Dongtao Cui
  • , Benjamin Tang
  • , Takashi Taniguchi
  • , Kenji Watanabe
  • , Abhay N. Pasupathy
  • , Xavier Roy
  • , Philip Kim

Research output: Contribution to journalArticlepeer-review

Abstract

The recent discovery of the van der Waals (vdW) layered heavy fermion antiferromagnetic metal CeSiI offers promising potential for achieving accessible quantum criticality in the two-dimensional (2D) limit. CeSiI exhibits both heavy fermion behavior and antiferromagnetic (AFM) ordering, while the exact magnetic structure and phase diagram are yet to be determined. Here, we investigate the magnetic properties of atomically thin CeSiI devices with thicknesses ranging from 2 to 15 vdW layers. The thickness-dependent magnetotransport measurement reveals the intrinsic 2D nature of heavy fermion behavior and antiferromagnetism. Notably, we also find an isotropic, time-dependent hysteresis in both magnetoresistance and Hall resistance, showing glassy relaxation dynamics. This glassy behavior in magnetic structures may suggest the presence of spin glass phases or multipolar ordering, further establishing CeSiI as an intriguing material system for investigating the interplay between magnetic orders and the Kondo effect.

Original languageEnglish
Pages (from-to)6848-6854
Number of pages7
JournalNano Letters
Volume25
Issue number17
DOIs
StatePublished - 30 Apr 2025

Keywords

  • antiferromagnetic order
  • CeSiI
  • heavy fermion
  • hysteresis
  • relaxation dynamics

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