From high temperature supercondutivity to quantum spin liquid: progress in strong correlation physics
Patrick A. Lee

TL;DR
This review discusses progress in understanding high temperature superconductors and quantum spin liquids within the framework of strong correlation physics, highlighting theoretical models, experimental discoveries, and open questions in the field.
Contribution
It provides a comprehensive overview of the theoretical and experimental advances in high temperature superconductivity and quantum spin liquids, emphasizing the role of gauge theories and fractionalized particles.
Findings
Resonating valence bond (RVB) theory offers an adequate understanding of cuprates.
Quantum oscillations observed in high magnetic fields support the RVB picture.
Progress has been made in realizing quantum spin liquids experimentally.
Abstract
This review gives a rather general discussion of high temperature superconductors as an example of a strongly correlated material. The argument is made that in view of the many examples of unconventional superconductors discovered in the past twenty years, we should no longer be surprised that superconductivity emerges as a highly competitive ground state in systems where Coulomb repulsion plays a dominant role. The physics of the cuprates is discussed, emphasizing the unusual pseudogap phase in the underdoped region. It is argued that the resonating valence bond (RVB) picture, as formulated using gauge theory with fermionic and bosonic matter fields, gives an adequate physical understanding, even though many details are beyond the powers of current calculational tools. The recent discovery of quantum oscillations in a high magnetic field is discussed in this context. Meanwhile, the…
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