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Evolution of lattice coherence in the intermediate-valence heavy-fermion compound EuNi2P2 studied by point contact spectroscopy

Masanobu Shiga1,*, Isao Maruyama2, Kengo Okimura1, Takurou Harada1, Takuya Takahashi1, Akihiro Mitsuda3,4, Hirofumi Wada3,4, Yuji Inagaki1,4, and Tatsuya Kawae1,4,†

  • 1Department of Applied Quantum Physics, Kyushu University, Motooka, Fukuoka 819-0395, Japan
  • 2Department of Information and Systems Engineering, Fukuoka Institute of Technology, Fukuoka 811-0295, Japan
  • 3Department of Physics, Kyushu University, Motooka, Fukuoka 819-0395, Japan
  • 4Research Center for Quantum Nano-Spin Sciences, Kyushu University, Motooka, Nishi-ku, Fukuoka 819-0395, Japan

  • *shiga.masanobu.987@m.kyushu-u.ac.jp
  • †t.kawae.122@m.kyushu-u.ac.jp

Phys. Rev. B 103, L041113 – Published 25 January, 2021

DOI: https://doi.org/10.1103/PhysRevB.103.L041113

Abstract

We performed a point contact spectroscopy study in an intermediate-valence heavy-fermion (HF) compound EuNi2P2. Above the Kondo temperature TK, the differential conductance spectra show a broad peak due to the Kondo resonance at the Eu site. Below TK, the broad peak splits into two peaks that can be reproduced by the summation of two Fano curves with the same parameters, indicating the emergence of the indirect hybridization gap in an Anderson lattice. With decreasing temperature, the separation between the two peaks increases and saturates at very low temperatures. The results reveal the evolution of the electronic structure in the HF state due to the development of the lattice coherence.

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