Spin Squeezing as a Probe of Emergent Quantum Orders
arXiv:2210.03697 · doi:10.7566/JPSCP.38.011149
Abstract
Nuclear magnetic resonance (NMR) experiments can reveal local properties in materials, but are often limited by the low signal-to-noise ratio. Spin squeezed states have an improved resolution below the Heisenberg limit in one of the spin components, and have been extensively used to improve the sensitivity of atomic clocks, for example. Interacting and entangled spin ensembles with non-linear coupling are a natural candidate for implementing squeezing. Here, we propose measurement of the spin-squeezing parameter that itself can act as a local probe of emergent orders in quantum materials. In particular, we demonstrate how to investigate an anisotropic electric field gradient via its coupling to the nuclear quadrupole moment. While squeezed spin states are pure, the squeezing parameter can be estimated for both pure and mixed states. We evaluate the range of fields and temperatures for which a thermal-equilibrium state is sufficient to improve the resolution in an NMR experiment and probe relevant parameters of the quadrupole Hamiltonian, including its anisotropy.
References in corpus (6)
- Novel Magnetism and Local Symmetry Breaking in a Mott Insulator with Strong Spin Orbit Interactions
- Dynamic nuclear polarization and spin-diffusion in non-conducting solids
- Spin squeezing in an ensemble of quadrupolar nuclei NMR system
- Nuclear Magnetic Resonance in High Magnetic Field: Application to Condensed Matter Physics
- Phase Diagram of BaNaOsO, a Mott insulator with strong spin orbit interactions
- Phase transition preceding magnetic long-range order in the double perovskite Ba2NaOsO6