Single-crystal investigations on the multiferroic material LiFe(WO)
arXiv:2103.14523 · doi:10.1103/PhysRevB.103.134412
Abstract
The crystal and magnetic structure of multiferroic LiFe(WO) were investigated by temperature and magnetic-field dependent specific heat, susceptibility and neutron diffraction experiments on single crystals. Considering only the two nearest-neighbour magnetic interactions, the system forms a , magnetic chain but more extended interactions are sizeable. Two different magnetic phases exhibiting long-range incommensurate order evolve at and . First, a spin-density wave develops with moments lying in the plane. In its multiferroic phase below , LiFe(WO) exhibits a spiral arrangement with an additional spin-component along . Therefore, the inverse Dzyaloshinskii-Moriya mechanism fully explains the multiferroic behavior in this material. A partially unbalanced multiferroic domain distribution was observed even in the absence of an applied electric field. For both phases only a slight temperature dependence of the incommensurability was observed and there is no commensurate phase emerging at low temperature or at finite magnetic fields up to . LiFe(WO) thus exhibits a simple phase diagram with the typical sequence of transitions for a type-II multiferroic material.
This manuscript has been accepted as a regular article in PRB: https://journals.aps.org/prb/accepted/fb07cO25Le41de3ae74211d6e869185cdc06df242
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