A Consistent Theory of Underdoped Cuprates: Evolution of the RVB State From Half Filling
Sanjoy K Sarker, Timothy Lovorn

TL;DR
This paper develops a renormalized Hamiltonian based on the t-J model to connect the physics of underdoped cuprates with the Mott insulator, explaining the pseudogap, strange metal phase, and d-wave superconductivity.
Contribution
It introduces a theory that links the half-filled RVB state to doped cuprates, explaining the two-dimensionality and phase behavior through a spin gap and holon dynamics.
Findings
The theory aligns with NMR, tunneling, and transport experiments.
It explains the pseudogap as a spinon gap and the strange metal as localized holons.
Predicts d-wave superconductivity primarily determined by the RVB state.
Abstract
We have been able to resolve two long-standing issues that are central to the theory of high Tc superconductivity: (1) How is the physics of the doped region connected to that of the Mott insulator? (2) What is the origin of the two-dimensionality of the normal state? Specifically, based on the t-J model, we derive a renormalized Hamiltonian to describe the properties of underdoped cuprates. The theory is constrained to agree with the behavior at half filling, which is well described by the bosonic RVB state of Arovas and Auerbach. Moving holes are assumed to destroy long-range magnetic order, which leads to a gap in the spinon spectrum. The presence of the spin gap allows us to derive a constrained Hamiltonian which describes sublattice-preserving hopping by renormalized holons and holon pairs, accompanied by spinon singlet backflows. Below the singlet condensation, i.e, the psudogap…
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