Milestones of low-D quantum magnetism

Вехи низкоразмерного квантового магнетизма
A. N. Vasiliev, О. С. Волкова, E.A. Zvereva, M.M. Markina
2018-03-28

Kitaev modellow-dimensional magnetismresonating valence bond statespin-Peierls transitionspin-nematic state
Abstract There is a long time gap between the formulation of the basic theory of low-dimensional (low-D) magnetism as advanced by Ising, Heisenberg and Bethe and its experimental verification. The latter started not long before the discovery of high- T C superconductivity in cuprates and has been boosted by this discovery result in an impressive succession of newly observed physical phenomena. Milestones on this road were the compounds which reached their quantum ground states upon lowering the temperature either gradually or through different instabilities. The gapless and gapped ground states for spin excitations in these compounds are inherent for isolated half-integer spin and integer spin chains, respectively. The same is true for the compounds hosting odd and even leg spin ladders. Some complex oxides of transition metals reach gapped ground state by means of spin-Peierls transition, charge ordering or orbital ordering mechanisms. However, the overwhelming majority of low-dimensional systems arrive to a long-range ordered magnetic state, albeit quite exotic realizations. Under a magnetic field some frustrated magnets stabilize multipolar order, e.g., showing a spin-nematic state in the simplest quadropolar case. Finally, numerous square, triangular, kagome and honeycomb layered lattices, along with Shastry–Sutherland and Nersesyan–Tsvelik patterns constitute the playground to check the basic concepts of two-dimensional magnetism, including resonating valence bond state, Berezinskii–Kosterlitz–Thouless transition and Kitaev model.
1
Complex transition-metal oxides can develop gapped ground states through spin-Peierls transitions, charge ordering, or orbital ordering.
2
Experimental verification of low-dimensional quantum magnetism followed the foundational Ising, Heisenberg, and Bethe theories after a long delay, accelerating markedly after cuprate high-temperature superconductivity.
3
Isolated half-integer-spin chains and odd-leg ladders exhibit gapless spin excitations, whereas integer-spin chains and even-leg ladders exhibit gapped ground states.
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Most low-dimensional magnetic systems ultimately develop long-range magnetic order, including exotic field-induced multipolar phases such as spin-nematic states.
5
Square, triangular, kagome, honeycomb, Shastry–Sutherland, and Nersesyan–Tsvelik lattices provide platforms for studying resonating valence bond states, Berezinskii–Kosterlitz–Thouless transitions, and Kitaev physics.

Low-dimensional quantum magnetic compounds and spin systems, including spin chains, spin ladders, frustrated magnets, and layered magnetic lattices

Quantum ground states, spin-excitation gaps, magnetic ordering, field-induced multipolar phases, and characteristic phenomena and models of one- and two-dimensional magnetism

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2018-03-28
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Authors
A. N. Vasiliev
О. С. Волкова
E.A. Zvereva
M.M. Markina
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