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Quantum confinement transition in a d -wave superconductor

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TLDR
In this article, the authors studied the zero-temperature phase transition between a d-wave superconductor and a Mott insulator in two dimensions, where spin and charge are confined to form the electron in the Mott interior.
Abstract
We study the nature of the zero-temperature phase transition between a d-wave superconductor and a Mott insulator in two dimensions. In this ``quantum confinement transition,'' spin and charge are confined to form the electron in the Mott insulator. Within a dual formulation, direct transitions from d-wave superconductors at half-filling to insulators with spin-Peierls (as well as other) order emerge naturally. The possibility of striped superconductors is also discussed within the dual formulation. The transition is described by nodal fermions and bosonic vortices, interacting via a long-ranged statistical interaction modeled by two coupled Chern-Simons gauge fields, and the critical properties of this model are discussed.

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Journal ArticleDOI

Deconfined Quantum Critical Points

TL;DR: It is shown that near second-order quantum phase transitions, subtle quantum interference effects can invalidate this paradigm for quantum criticality, and a theory of quantum critical points in a variety of experimentally relevant two-dimensional antiferromagnets is presented.
Journal ArticleDOI

Theory of the Nernst effect near quantum phase transitions in condensed matter and in dyonic black holes

TL;DR: In this article, a general hydrodynamic theory of transport in the vicinity of superfluid-insulator transitions in two spatial dimensions described by ''Lorentz''-invariant quantum critical points was presented.
Journal ArticleDOI

Quantum criticality beyond the Landau-Ginzburg-Wilson paradigm

TL;DR: In this article, the critical theory of a number of zero-temperature phase transitions of quantum antiferromagnets and interacting boson systems in two dimensions is presented, and it is shown that these two states are separated by a second-order quantum phase transition.
Journal Article

Theory of the Nernst effect near quantum phase transitions in condensed matter, and in dyonic black holes

TL;DR: In this article, a general hydrodynamic theory of transport in the vicinity of superfluid-insulator transitions in two spatial dimensions described by Lorentz-invariant quantum critical points is presented.

Quantum criticality: beyond the Landau-Ginzburg-Wilson paradigm

Subir Sachdev
TL;DR: In this paper, the critical theory of a number of zero-temperature phase transitions of quantum antiferromagnets and interacting boson systems in two dimensions is presented, and it is shown that these two states are separated by a second-order quantum phase transition.
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