4.8 Article

Duality and domain wall dynamics in a twisted Kitaev chain

期刊

NATURE PHYSICS
卷 17, 期 7, 页码 832-+

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NATURE PORTFOLIO
DOI: 10.1038/s41567-021-01208-0

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  1. Institute for Quantum Matter, an Energy Frontier Research Center - Office of Basic Energy Sciences of the Department of Energy [DE-SC0019331]
  2. National Science Foundation [DMR-1611161]
  3. Estonian Ministry of Education and Research [IUT23-3]
  4. European Regional Development Fund [TK134]

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The terahertz spectroscopic study of quasi-one-dimensional ferromagnet CoNb2O6 reveals bond-dependent interactions similar to the one-dimensional honeycomb Kitaev spin liquid. The material is shown to be described by a 'twisted Kitaev chain' model, deviating from the Ising chain model. The ferromagnetic ground state arises from a compromise between two axes, leading to quantum motion of domain walls and potential for quantum spin liquid behavior in Co2+ magnets.
A terahertz spectroscopic study of the quasi-one-dimensional ferromagnet CoNb2O6 reveals bond-dependent interactions in this material that are similar to those of a one-dimensional version of the honeycomb Kitaev spin liquid. The Ising chain in a transverse field is a paradigmatic model for a host of physical phenomena, including spontaneous symmetry breaking, quantum criticality and duality. Although the quasi-one-dimensional ferromagnet CoNb2O6 has been regarded as the Ising chain's best material realization, it exhibits substantial deviations from ideality. By combining terahertz spectroscopy and calculations, we show that CoNb2O6 is in fact described by a different model with bond-dependent interactions, which we call the 'twisted Kitaev chain', as these interactions are similar to those of the honeycomb Kitaev spin liquid. The ferromagnetic ground state of CoNb2O6 arises from the compromise between two axes. Owing to this frustration, even at zero field domain walls have quantum motion, which is described by the celebrated Su-Schriefer-Heeger model of polyacetylene and shows rich behaviour as a function of field. Nevertheless, close to the critical field, this model enters a universal regime in the Ising universality class. We observe that the excitation gap in the ferromagnet closes at a rate twice that of the paramagnet. This universal ratio originates in the Kramers-Wannier duality between domain walls and spin flips, and in the topological conservation of domain wall parity. Our work also shows that Co2+ magnets are fertile ground in the search for quantum spin liquids.

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