Electronic liquid-crystal phases of a doped Mott insulator

The character of the ground state of an antiferromagnetic insulator is fundamentally altered following addition of even a small amount of charge. The added charge is concentrated into domain walls across which a π phase shift in the spin correlations of the host material is induced. In two dimension...

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Veröffentlicht in:Nature (London) 1998-06, Vol.393 (6685), p.550-553
Hauptverfasser: Emery, V. J, Kivelson, S. A, Fradkin, E
Format: Artikel
Sprache:eng
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Zusammenfassung:The character of the ground state of an antiferromagnetic insulator is fundamentally altered following addition of even a small amount of charge. The added charge is concentrated into domain walls across which a π phase shift in the spin correlations of the host material is induced. In two dimensions, these domain walls are 'stripes' which can be insulating, or conducting - that is, metallic 'rivers' with their own low-energy degrees of freedom. However, in arrays of one-dimensional metals, which occur in materials such as organic conductors, interactions between stripes typically drive a transition to an insulating ordered charge-density-wave (CDW) state at low temperatures. Here it is shown that such a transition is eliminated if the zero-point energy of transverse stripe fluctuations is sufficiently large compared tothe CDW coupling between stripes. As a consequence, there should exist electronic quantum liquid-crystal phases, which constitute new states of matter, and which can be either high-temperature superconductors or two-dimensional anisotropic 'metallic' non-Fermi liquids. Neutron scattering and other experiments in the copper oxide superconductor La1.6−xNd0.4SrxCuO4 already provide evidence for the existence of these phases in at least one class of materials.
ISSN:0028-0836
1476-4687
DOI:10.1038/31177