Topological spin freezing in frustrated quantum materials
U. Jena, M. Barman, A. Pradhan, and P. Khuntia

TL;DR
This paper explores topological spin-glass behavior in frustrated quantum materials, revealing unconventional spin dynamics and emergent phenomena through comprehensive experimental and theoretical analysis.
Contribution
It introduces a unified framework linking topological spin freezing with experimental signatures and theoretical models in frustrated quantum systems.
Findings
Identification of topological spin-glass signatures across multiple experimental probes
Discovery of unconventional spin dynamics and low-energy excitations
Role of hydrodynamic spin modes in glassy behavior
Abstract
Competing interactions, non-trivial electronic band topology, quantum fluctuations, and the interplay between emergent degrees of freedom in frustrated quantum materials can give rise to a wide range of exotic phenomena. Glassy dynamics, originally studied in amorphous materials and biological systems, has recently attracted considerable interest in quantum condensed matter, particularly in relation to the collective behavior of spins, quasiparticle excitations, and topological spin textures. Here, we investigate the emergence of unconventional glassy spin dynamics in a broad class of frustrated quantum materials, where spin freezing exhibit distinct signatures in both thermodynamic and microscopic measurements. Using a comprehensive set of experimental probes, including thermodynamic, NMR, (SR), and neutron scattering, we identify characteristic signatures of topological…
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