Experimental signature of the attractive Coulomb force between positive and negative magnetic monopoles in spin ice
arXiv:1603.09720 · doi:10.1038/nphys3704
Abstract
A non-Ohmic current that grows exponentially with the square root of applied electric field is well known from thermionic field emission (the Schottky effect), electrolytes (the second Wien effect) and semiconductors (the Poole-Frenkel effect). It is a universal signature of the attractive Coulomb force between positive and negative electrical charges, which is revealed as the charges are driven in opposite directions by the force of an applied electric field. Here we apply thermal quenches to spin ice to prepare metastable populations of bound pairs of positive and negative emergent magnetic monopoles at millikelvin temperatures. We find that the application of a magnetic field results in a universal exponential-root field growth of magnetic current, thus confirming the microscopic Coulomb force between the magnetic monopole quasiparticles and establishing a magnetic analogue of the Poole-Frenkel effect. At temperatures above 300 mK, gradual restoration of kinetic monopole equilibria causes the non-Ohmic current to smoothly evolve into the high field Wien effect for magnetic monopoles, as confirmed by comparison to a recent and rigorous theory of the Wien effect in spin ice. Our results extend the universality of the exponential-root field form into magnetism and illustrate the power of emergent particle kinetics to describe far-from equilibrium response in complex systems.
In Nature Physics (2016)
References in corpus (6)
- Low Temperature Spin Freezing in Dy2Ti2O7 Spin Ice
- Vacancy defects and monopole dynamics in oxygen-deficient pyrochlores
- Spin Dynamics at Very Low Temperature in Spin Ice DyTiO
- Far from equilibrium monopole dynamics in spin ice
- Of chain-based order and quantum spin liquids in dipolar spin ice
- AC Wien effect in spin ice, manifest in non-linear non-equilibrium susceptibility
Cited by in corpus (19)
- Magnetic Monopole Noise
- Pauling entropy, metastability and equilibrium in DyTiO spin ice
- Dynamical fractal and anomalous noise in a clean magnetic crystal
- Emergent Electrochemistry in Spin Ice: Debye-Hückel Theory and Beyond
- Anomalous magnetic noise in imperfect flat bands in the topological magnet Dy2Ti2O7
- Phonon-mediated spin-flipping mechanism in the spin ices DyTiO and HoTiO
- Dipolar spin ice states with fast monopole hopping rate in CdErX (X = Se, S)
- Evidence for the Confinement of Magnetic Monopoles in Quantum Spin Ice
- Nuclear spin assisted quantum tunnelling of magnetic monopoles in spin ice
- Violation of the fluctuation-dissipation theorem and effective temperatures in spin ice
- Extremely slow non-equilibrium monopole dynamics in classical spin ice
- Screening and the Pinch Point Paradox in Spin Ice
- Traversing the pyrochlore stability diagram; microwave-assisted synthesis and discovery of mixed B-site LnInSbO family
- Anomalous out-of-equilibrium dynamics in the spin-ice material DyTiO under moderate magnetic fields
- Thermal Conductivity of Square Ice
- Power spectrum of magnetic relaxation in spin ice: anomalous diffusion in a Coulomb fluid
- Long-range Coulomb interactions and nonhydrodynamic behavior in thermal quenches in spin ice
- Various facets of magnetic charge correlation: Micromagnetic and distorted waveBorn approximation simulations study
- Phase Transition and Monopoles Densities in a Nearest Neighbors Two-Dimensional Spin Ice Model