| Literature DB >> 35780148 |
Naween Anand1,2, Kevin Barry1,3,4, Jennifer N Neu1,3,5, David E Graf1, Qing Huang6, Haidong Zhou6, Theo Siegrist1,7, Hitesh J Changlani1,3, Christianne Beekman8,9.
Abstract
The single-ion anisotropy and magnetic interactions in spin-ice systems give rise to unusual non-collinear spin textures, such as Pauling states and magnetic monopoles. The effective spin correlation strength (Jeff) determines the relative energies of the different spin-ice states. With this work, we display the capability of capacitive torque magnetometry in characterizing the magneto-chemical potential associated with monopole formation. We build a magnetic phase diagram of Ho2Ti2O7, and show that the magneto-chemical potential depends on the spin sublattice (α or β), i.e., the Pauling state, involved in the transition. Monte Carlo simulations using the dipolar-spin-ice Hamiltonian support our findings of a sublattice-dependent magneto-chemical potential, but the model underestimates the Jeff for the β-sublattice. Additional simulations, including next-nearest neighbor interactions (J2), show that long-range exchange terms in the Hamiltonian are needed to describe the measurements. This demonstrates that torque magnetometry provides a sensitive test for Jeff and the spin-spin interactions that contribute to it.Entities:
Year: 2022 PMID: 35780148 PMCID: PMC9250528 DOI: 10.1038/s41467-022-31297-1
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 17.694