English

Optical Control of Exchange Interaction and Kondo Temperature in cold Atom Gas

Quantum Gases 2019-02-05 v3 Strongly Correlated Electrons Atomic Physics

Abstract

The relevance of magnetic impurity problems in cold atom systems depends crucially on the nature of exchange interaction between itinerant fermionic atoms and a localized impurity atom. In particular, Kondo physics occurs only if the exchange interaction is anti-ferromagnetic, and strong enough to yield high enough Kondo temperature (TK/TF0.1T_K/T_F \ge 0.1). Focusing, as an example, on the experimentally accessible system of ultra-cold 173^{173}Yb atoms, it is shown that the sign and strength of an exchange interaction between an itinerant Yb(1^{1}S0_{0}) atom and a trapped Yb(3^{3}P0_{0}) atom can be optically controlled. Explicitly, as the light intensity increases (from zero), the exchange interaction changes from ferromagnetic to anti-ferromagnetic. When the light intensity is just below a singlet Feshbach resonance, the singlet scattering length aSa_S is large and negative, and the Kondo temperature increases sharply.

Keywords

Cite

@article{arxiv.1801.00482,
  title  = {Optical Control of Exchange Interaction and Kondo Temperature in cold Atom Gas},
  author = {Igor Kuzmenko and Tanya Kuzmenko and Yshai Avishai},
  journal= {arXiv preprint arXiv:1801.00482},
  year   = {2019}
}

Comments

6 pages, 3 eps figures