Electron-induced nuclear magnetic ordering in n-type semiconductors
Abstract
Nuclear magnetism in n-doped semiconductors with positive hyperfine constant is revisited. Two kinds of nuclear magnetic ordering can be induced by resident electrons in a deeply cooled nuclear spin system. At positive nuclear spin temperature below a critical value, randomly oriented nuclear spin polarons similar to that predicted by I. Merkulov [I. Merkulov, Physics of the Solid State 40, 930 (1998)] should emerge. These polarons are oriented randomly and within each polaron nuclear and electron spins are aligned antiferromagnetically. At negative nuclear spin temperature below a critical value we predict another type of magnetic ordering - dynamically induced nuclear ferromagnet. This is a long-range ferromagnetically ordered state involving both electrons and nuclei. It can form if electron spin relaxation is dominated by the hyperfine coupling, rather than by the spin-orbit interaction. Application of the theory to the n-doped GaAs suggests that the ferromagnetic order may be reached at experimentally achievable nuclear spin temperature K and lattice temperature K.
Cite
@article{arxiv.2103.01120,
title = {Electron-induced nuclear magnetic ordering in n-type semiconductors},
author = {M. Vladimirova and D. Scalbert and M. S. Kuznetsova and K. V. Kavokin},
journal= {arXiv preprint arXiv:2103.01120},
year = {2021}
}
Comments
12 pages, 6 figures