Interaction-Induced Gradients Across a Confined Fermion Lattice
arXiv:1707.02607 · doi:10.1103/PhysRevA.96.033632
Abstract
An imposed chemical potential gradient on a single fermionic species ("spin up") directly produces a gradient in the density across a lattice. We study here the induced density inhomogeneity in the second fermionic species ("spin down") which results from fermionic interactions , even in the absence of a chemical potential gradient on that species. The magnitude of acquired by the second species grows with , while the magnitude of remains relatively constant, that is, set only by . For a given , we find an interaction strength above which the two density gradients are equal in magnitude. We also evaluate the spin-spin correlations and show that, as expected, antiferromagnetism is most dominant at locations where the local density is half-filled. The spin polarization induced by sufficiently large gradients, in combination with , drives ferromagnetic behavior. In the case of repulsive interactions, . A simple particle-hole transformation determines the related effect in the case of attractive interactions.
7 pages, 9 figures
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