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UTe2_2: a nearly insulating half-filled j=52j=\frac{5}{2} 5f35f^3 heavy fermion metal

Published 21 Mar 2021 in cond-mat.str-el and cond-mat.supr-con | (2103.11410v1)

Abstract: Correlated band theory implemented as a combination of density functional theory with exact diagonalization [DFT+U(ED)] of the Anderson impurity term with Coulomb repulsion UU in the open 14-orbital $5f$ shell is applied to UTe2_2. The small gap for UU=0, evidence of the half-filled j=52j=\frac{5}{2} subshell of $5f3$ uranium, is converted for UU=3 eV to a flat band semimetal with small heavy-carrier Fermi surfaces that will make properties sensitive to pressure, magnetic field, and off-stoichiometry, as observed experimentally. The predicted Kondo temperature around 100 K matches the experimental values from resistivity. The electric field gradients for the two Te sites are calculated by DFT+U(ED) to differ by a factor of seven, indicating a strong site distinction, while the anisotropy factor η=0.18\eta=0.18 is similar for all three sites. The calculated uranium moment $&lt;M^2&gt;<sup>{1/2}$ of 3.5μB\mu_B is roughly consistent with the published experimental Curie-Weiss values of 2.8μB\mu_B and 3.3μB\mu_B (which are field-direction dependent), and the calculated separate spin and orbital moments are remarkably similar to Hund's rule values for an f<sup>3f<sup>3 ion. The UU=3 eV spectral density is compared with angle-integrated and angle-resolved photoemission spectra, with agreement that there is strong $5f$ character at, and for several hundred meV below, the Fermi energy. Our results support the picture that the underlying ground state of UTe2_2 is that of a half-filled j=52j=\frac{5}{2} subshell with two half-filled mj=±12m_j=\pm\frac{1}{2} orbitals forming a narrow gap by hybridization, then driven to a conducting state by configuration mixing (spin-charge fluctuations). UTe2_2 displays similarities to UPt3_3 with its $5f$ dominated Fermi surfaces rather than a strongly localized Kondo lattice system.

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