Observing Differential Spin Currents by Resonant Inelastic X-ray Scattering
arXiv:2508.05796 · doi:10.1038/s41586-025-09488-9
Abstract
Controlling spin currents, i.e., the flow of spin angular momentum, in small magnetic devices is the principal objective of spin electronics, a main contender for future energy efficient information technologies. Surprisingly, a pure spin current has never been measured directly since the associated electric stray fields and/or shifts in the non-equilibrium spin-dependent distribution functions are too small for conventional experimental detection methods optimized for charge transport. Here we report that resonant inelastic x-ray scattering (RIXS) can bridge this gap by measuring the spin current carried by magnons -- the quanta of the spin wave excitations of the magnetic order -- in the presence of temperature gradients across a magnetic insulator. This is possible due to the sensitivity of the momentum- and energy-resolved RIXS intensity to minute changes in the magnon distribution under non-equilibrium conditions. We use the Boltzmann equation in the relaxation time approximation to extract transport parameters, such as the magnon lifetime at finite momentum, essential for the realization of magnon spintronics.
References in corpus (38)
- Spin Caloritronics
- Resonant Inelastic X-ray Scattering Studies of Elementary Excitations
- Observation of the Spin-Seebeck Effect in a Ferromagnetic Semiconductor
- Antiferromagnetic order and spin dynamics in iron-based superconductors
- Theory of the Spin Seebeck Effect
- Observation of the orbital Hall effect in a light metal Ti
- Magnon spin transport driven by the magnon chemical potential in a magnetic insulator
- Intrinsic Spin Seebeck Effect in Au/YIG
- Critical suppression of spin Seebeck effect by magnetic fields
- Determination of the origin of the spin Seebeck effect - bulk vs. interface effects
- Magnon Mediated Electric Current Drag Across a Ferromagnetic Insulator Layer
- Spin convertance at magnetic interfaces
- Thermal spin dynamics of yttrium iron garnet
- Theory of Resonant Inelastic X-ray Scattering by Collective Magnetic Excitations
- Gigantic enhancement of spin Seebeck effect by phonon drag
- Thermal spin pumping and magnon-phonon-mediated spin-Seebeck effect
- Persistent spin excitations in doped antiferromagnets revealed by resonant inelastic light scattering
- Asymmetry of collective excitations in electron and hole doped cuprate superconductors
- Magneto-elastic modes and lifetime of magnons in thin yttrium-iron garnet films
- The Final Chapter In The Saga Of YIG
- Observation of the Magnon Polarization
- Influence of yttrium iron garnet thickness and heater opacity on the nonlocal transport of electrically and thermally excited magnons
- Giant magnon spin conductivity approaching the two-dimensional transport regime in ultrathin yttrium iron garnet films
- Evidence for the role of the magnon energy relaxation length in the Spin Seebeck Effect
- Direct detection of pure spin-current by x-ray pump-probe measurements
- Concomitant enhancement of longitudinal spin Seebeck effect with thermal conductivity
- Quantum thermodynamics of complex ferrimagnets
- X-Ray Detection of Transient Magnetic Moments Induced by a Spin Current in Cu
- Coulomb correlations intertwined with spin and orbital excitations in LaCoO
- Overlooked Contribution to the Hall Effect in Ferromagnetic Metals
- Dynamic electron correlations with charge order wavelength along all directions in the copper oxide plane
- Femtosecond dynamics of magnetic excitations from resonant inelastic x-ray scattering in CaCu2O3
- Long lifetime of thermally-excited magnons in bulk yttrium iron garnet
- Tuning spin excitations in magnetic films by confinement
- Differences in the magnon diffusion length for electrically and thermally driven magnon currents in YFeO
- Dynamical spin susceptibility in La2CuO4 studied by resonant inelastic x-ray scattering
- Neutron Scattering Study on Yttrium Iron Garnet for Spintronics
- Site-specific electronic and magnetic excitations of the skyrmion material CuOSeO