Diagnosing electronic phases of matter using photonic correlation functions
arXiv:2410.24215 · doi:10.1103/67zs-hqf3
Abstract
In the past couple of decades, there have been significant advances in measuring quantum properties of light, such as quadratures of squeezed light and single-photon counting. Here, we explore whether such tools can be leveraged to probe electronic correlations in the many-body quantum regime. Specifically, we show that it is possible to probe certain spin, charge, and topological orders in an electronic system by measuring the correlation functions of scattered photons. We construct a mapping from the correlators of the scattered photons to those of a correlated insulator, particularly for Mott insulators described by a single-band Fermi-Hubbard model at half-filling. We show that frequency filtering before photodetection plays a crucial role in determining this mapping. We find that if the ground state of the insulator is a gapped spin liquid, a photon-pair correlation function, i.e., , can detect the presence of anyonic excitations with fractional mutual statistics. Moreover, we show that correlations between electromagnetic quadratures can be used to detect expectation values of static spin chirality operators on both the kagome and triangular lattices, thus being useful in detecting chiral spin liquids. More generally, we show that a series of hitherto unmeasured spin-spin and spin-charge correlation functions of the material can be extracted from photonic correlations. This work opens up access to probe correlated materials, beyond the linear response paradigm, by detecting quantum properties of scattered light.
Typos have been corrected and presentation improved. New section on experimental realization. The results are essentially the same as the previous version
References in corpus (51)
- Novel Jeff = 1/2 Mott State Induced by Relativistic Spin-Orbit Coupling in Sr2IrO4
- Observation of Fractionally Quantized Anomalous Hall Effect
- Inelastic Light Scattering From Correlated Electrons
- Direct observation of anyonic braiding statistics at the =1/3 fractional quantum Hall state
- The Hubbard Model
- Fractional statistics in anyon collisions
- Theoretical description of time-resolved photoemission spectroscopy: application to pump-probe experiments
- Probing multimode squeezing with correlation functions
- From high temperature supercondutivity to quantum spin liquid: progress in strong correlation physics
- Antibunching and unconventional photon blockade with Gaussian squeezed states
- Excitonic quasiparticles in a spin-orbit Mott insulator
- Electromagnetic coupling in tight-binding models for strongly correlated light and matter
- Correlated insulator of excitons in WSe2/WS2 moiré superlattices
- Terahertz field-induced nonlinear coupling of two magnon modes in an antiferromagnet
- Four-Spin Terms and the Origin of the Chiral Spin Liquid in Mott Insulators on the Triangular Lattice
- Electron pairing in the pseudogap state revealed by shot noise in copper-oxide junctions
- Gauge Fixing for Strongly Correlated Electrons coupled to Quantum Light
- Theory of two-dimensional nonlinear spectroscopy for the Kitaev spin liquid
- The range of non-Kitaev terms and fractional particles in RuCl
- Shot Noise in Mesoscopic Systems: from Single Particles to Quantum Liquids
- Direct evidence for Cooper pairing without a spectral gap in a disordered superconductor above
- Hubbard exciton revealed by time-domain optical spectroscopy
- Excitonic Mott insulator in a Bose-Fermi-Hubbard system of moiré / heterobilayer
- Spectroscopic fingerprints of gapped quantum spin liquids, both conventional and fractonic
- Shot noise in a strange metal
- Spin magnetometry as a probe of stripe superconductivity in twisted bilayer graphene
- Resonant Two-Magnon Raman Scattering and Photoexcited States in Two-Dimensional Mott Insulators
- Chiral Pseudo Spin Liquids in Moire Heterostructures
- Asymptotically exact theory for nonlinear spectroscopy of random quantum magnets
- Photon echo from lensing of fractional excitations in Tomonaga-Luttinger spin liquid
- Extracting spinon self-energies from two-dimensional coherent spectroscopy
- Measuring pair correlations in Bose and Fermi gases via atom-resolved microscopy
- Nonlinear spectroscopy of bound states in perturbed Ising spin chains
- A Hubbard exciton fluid in a photo-doped antiferromagnetic Mott insulator
- Optical pumping of electronic quantum Hall states with vortex light
- Signatures of fractional statistics in nonlinear pump-probe spectroscopy
- Spin-Mediated Mott Excitons
- Two-dimensional coherent spectrum of interacting spinons from matrix-product states
- Shedding Light on Microscopic Details: 2D Spectroscopy of 1D Quantum Ising Magnets
- Nonlinear response of the Kitaev honeycomb lattice model in a weak magnetic field
- Enhancement of superconductivity with external phonon squeezing
- Symmetry of Photoexcited States and Large-Shift Raman Scattering in Two-Dimensional Mott Insulators
- Monopole Josephson Effects in a Dirac Spin Liquid
- Two-dimensional excitons from twisted light and the fate of the photon's orbital angular momentum
- Angle-Resolved Pair Photoemission Theory for Correlated Electrons
- Anomalous thermal relaxation and pump-probe spectroscopy of 2D topologically ordered systems
- Revealing Quadrupolar Excitations with Non-Linear Spectroscopy
- Disentangling spin excitation continua in classical and quantum magnets using 2D nonlinear spectroscopy
- Exploiting polarization dependence in two dimensional coherent spectroscopy: examples of CeZrO and NdZrO
- Cavity Spectroscopy for Strongly Correlated Systems
- Ultrafast pump-probe phase-randomized tomography