Quantum spin liquid states are realized in systems with frustrated magnetic interactions. Here, the authors show that tunable frustrated spin-spin interactions can be induced by coupling a quantum antiferromagnet to the quantized light of a driven optical cavity, giving rise to robust quantum spin liquid states. Quantum spin liquids provide paradigmatic examples of highly entangled quantum states of matter. Frustration is the key mechanism to favor spin liquids over more conventional magnetically ordered states. Here we propose to engineer frustration by exploiting the coupling of quantum magnets to the quantized light of an optical cavity. The interplay between the quantum fluctuations of the electro-magnetic field and the strongly correla...
We show that the macroscopic magnetic and electronic properties of strongly correlated electron syst...
In the ongoing quest for a robust realization of a quantum spin liquid, a range of interesting magne...
The recent experimental observation of spinor self-ordering of ultracold atoms in optical resonators...
Quantum spin liquid states are realized in systems with frustrated magnetic interactions. Here, the ...
Quantum spin liquids provide paradigmatic examples of highly entangled quantum states of matter. Fru...
Quantum spin liquids provide paradigmatic examples of highly entangled quantum states of matter. Fru...
Frustration, or the competition between interacting components of a network, is often responsible fo...
Frustration, or the competition between interacting components of a network, is often responsible fo...
Frustration, or the competition between interacting components of a network, is often responsible fo...
The recent experimental observation of spinor self-ordering of ultracold atoms in optical resonators...
The recent experimental observation of spinor self-ordering of ultracold atoms in optical resonators...
Unlike conventional magnets where the magnetic moments are partially or completely static in the gro...
Unlike conventional magnets where the magnetic moments are partially or completely static in the gro...
Unlike conventional magnets where the magnetic moments are partially or completely static in the gro...
Many-body quantum mechanics is the fundamental theory behind many areas of modern science, such as c...
We show that the macroscopic magnetic and electronic properties of strongly correlated electron syst...
In the ongoing quest for a robust realization of a quantum spin liquid, a range of interesting magne...
The recent experimental observation of spinor self-ordering of ultracold atoms in optical resonators...
Quantum spin liquid states are realized in systems with frustrated magnetic interactions. Here, the ...
Quantum spin liquids provide paradigmatic examples of highly entangled quantum states of matter. Fru...
Quantum spin liquids provide paradigmatic examples of highly entangled quantum states of matter. Fru...
Frustration, or the competition between interacting components of a network, is often responsible fo...
Frustration, or the competition between interacting components of a network, is often responsible fo...
Frustration, or the competition between interacting components of a network, is often responsible fo...
The recent experimental observation of spinor self-ordering of ultracold atoms in optical resonators...
The recent experimental observation of spinor self-ordering of ultracold atoms in optical resonators...
Unlike conventional magnets where the magnetic moments are partially or completely static in the gro...
Unlike conventional magnets where the magnetic moments are partially or completely static in the gro...
Unlike conventional magnets where the magnetic moments are partially or completely static in the gro...
Many-body quantum mechanics is the fundamental theory behind many areas of modern science, such as c...
We show that the macroscopic magnetic and electronic properties of strongly correlated electron syst...
In the ongoing quest for a robust realization of a quantum spin liquid, a range of interesting magne...
The recent experimental observation of spinor self-ordering of ultracold atoms in optical resonators...