We study a recently proposed quantum dimer model for the pseudogap metal state of the cuprates. The model contains bosonic dimers, representing a spin-singlet valence bond between a pair of electrons, and fermionic dimers, representing a quasiparticle with spin-1/2 and charge +e. By density matrix renormalization group calculations on a long but finite cylinder, we obtain the ground state density distribution of the fermionic dimers for a number of di↵erent total densities. From the Friedel oscillations at open boundaries, we deduce that the Fermi surface consists of small hole pockets near (⇡/2, ⇡/2), and this feature persists up to doping density 1/16. We also compute the entanglement entropy and find that it closely matches the sum of th...
We propose a theory for the underdoped hole-doped cuprates, focusing on the "nodal-anti-nodal dichot...
Magnetic adatoms on a superconducting substrate undergo a quantum phase transition as their exchange...
Quantum dimer models (QDMs) arise as low-energy effective models for frustrated magnets. Some of the...
We propose a quantum dimer model for the metallic state of the hole-doped cuprates at low hole densi...
We consider fermionic fully packed loop and quantum dimer models which serve as effective low-energy...
We study the phases of doped spin S=½ quantum antiferromagnets on the square lattice as they evolve ...
We study the doped and undoped quantum dimer model using exact diagonalization. In the undoped case,...
Doping a Mott-insulating Z 2 spin liquid can lead to a fractionalized Fermi liquid (FL*). Such a pha...
An outstanding challenge involves understanding the many-particle entanglement of liquid states of q...
Recent experiments in the underdoped regime of the hole-doped cuprates have found evidence for an in...
We revisit the description of the low-energy singlet sector of the spin-1/2 Heisenberg antiferromagn...
The formation of bound states of fermions in one dimension has always been one of the key topics in ...
We introduce and study three-dimensional quantum dimer models with positive resonance terms. We demo...
We investigate the rich quantum phase diagram of Wegner's theory of discrete Ising gauge fields inte...
We perform a matrix-product-state–based density matrix renormalisation group analysis of the phases ...
We propose a theory for the underdoped hole-doped cuprates, focusing on the "nodal-anti-nodal dichot...
Magnetic adatoms on a superconducting substrate undergo a quantum phase transition as their exchange...
Quantum dimer models (QDMs) arise as low-energy effective models for frustrated magnets. Some of the...
We propose a quantum dimer model for the metallic state of the hole-doped cuprates at low hole densi...
We consider fermionic fully packed loop and quantum dimer models which serve as effective low-energy...
We study the phases of doped spin S=½ quantum antiferromagnets on the square lattice as they evolve ...
We study the doped and undoped quantum dimer model using exact diagonalization. In the undoped case,...
Doping a Mott-insulating Z 2 spin liquid can lead to a fractionalized Fermi liquid (FL*). Such a pha...
An outstanding challenge involves understanding the many-particle entanglement of liquid states of q...
Recent experiments in the underdoped regime of the hole-doped cuprates have found evidence for an in...
We revisit the description of the low-energy singlet sector of the spin-1/2 Heisenberg antiferromagn...
The formation of bound states of fermions in one dimension has always been one of the key topics in ...
We introduce and study three-dimensional quantum dimer models with positive resonance terms. We demo...
We investigate the rich quantum phase diagram of Wegner's theory of discrete Ising gauge fields inte...
We perform a matrix-product-state–based density matrix renormalisation group analysis of the phases ...
We propose a theory for the underdoped hole-doped cuprates, focusing on the "nodal-anti-nodal dichot...
Magnetic adatoms on a superconducting substrate undergo a quantum phase transition as their exchange...
Quantum dimer models (QDMs) arise as low-energy effective models for frustrated magnets. Some of the...