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Updated: Oct 3, 2026

Optimizing Magnetic Force Microscopy Resolution and Sensitivity to Visualize Nanoscale Magnetic Domains
Published on: July 20, 2022
Observation of a spin-textured nematic Kondo lattice
Yu-Xiao Jiang1, Zi-Jia Cheng2, Qiaozhi Xu3
1Laboratory for Topological Quantum Matter and Advanced Spectroscopy, Department of Physics, Princeton University, Princeton, NJ, USA. yuxiaoj@princeton.edu.
Abstract:
The Kondo lattice model, as one of the most fundamental models in condensed matter physics, has been employed to describe a wide range of quantum materials. Discovering new phases on the Kondo lattice and unveiling their mechanisms are crucial to the understanding of strongly correlated systems. Here, in a layered Kondo magnet USbTe, we observe a spin-textured nematic state and visualize a heavy electronic liquid-crystal phase. Employing scanning tunneling microscopy and spectroscopy (STM/STS), we visualize a tetragonal symmetry breaking of heavy electronic states around the Fermi level, which coincides with the formation of heavy quasi-particles driven by band hybridization. Remarkably, using spin-polarized STM, we demonstrate that the nematic state is spin-polarized, which not only suggests its intrinsically electronic nature but also represents the unique magnetic texture of nematic heavy fermions. Our findings unveil a novel correlation-mediated order whose mechanism is inherently tied to Kondo-lattice physics. The observation of heavy nematic states enriches the phase diagram of correlated systems and provides a rare platform to explore the interplay of Kondo physics, spontaneous symmetry breaking, and quantum criticality.
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