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Ferromagnetic Instability in a Doped Band-Gap Semiconductor FeGa$_{3}$

Strongly Correlated Electrons 2015-06-11 v1

Abstract

We report the effects of electron doping on the ground state of a diamagnetic semiconductor FeGa3_{3} with a band gap of 0.5 eV. By means of electrical resistivity, magnetization and specific heat measurements we have found that gradual substitution of Ge for Ga in FeGa3y_{3-y}Gey_{y} yields metallic conduction at a very small level of y=0.006y = 0.006, then induces weak ferromagnetic (FM) order at y=0.13y = 0.13 with a spontaneous moment of 0.1 μB\mu_{B}/Fe and a Curie temperature TC=3.3T_{C}= 3.3 K, which continues increasing to TC=75T_{C} = 75 K as doping reaches y=0.41y = 0.41. The emergence of the FM state is accompanied by quantum critical behavior as observed in the specific heat, C/TC/T \propto -lnTT, and in the magnetic susceptibility, M/BT4/3M/B \propto T^{-4/3}. At y=0.09y= 0.09, the specific heat divided by temperature C/TC/T reaches a large value of 70 mJ/K2^{2}molFe, twice as large as that reported on FeSi1x_{1-x}Gex_{x} for xc=0.37x_{c}= 0.37 and Fe1x_{1-x}Cox_{x}Sb2_{2} for xc=0.3x_{c}=0.3 at their respective FM quantum critical points. The critical concentration yc=0.13y_{c}=0.13 in FeGa3y_{3-y}Gey_{y} is quite small, despite the fact that its band gap is one order of magnitude larger than those in FeSi and FeSb2_{2}. In contrast, no FM state emerges by substituting Co for Fe in Fe1x_{1-x}Cox_{x}Ga3_{3} in the whole range 0x10 \leq x \leq 1, although both types of substitution should dope electrons into FeGa3_{3}. The FM instability found in FeGa3y_{3-y}Gey_{y} indicates that strong electron correlations are induced by the disturbance of the Fe 3d - Ga 4p hybridization.

Keywords

Cite

@article{arxiv.1210.5360,
  title  = {Ferromagnetic Instability in a Doped Band-Gap Semiconductor FeGa$_{3}$},
  author = {Kazunori Umeo and Yuta Hadano and Shota Narazu and Takahiro Onimaru and Marcos A. Avila and Toshiro Takabatake},
  journal= {arXiv preprint arXiv:1210.5360},
  year   = {2015}
}

Comments

21 pages, 11 figures, accepted for publication in Phys. Rev. B