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Electronic structures of spin-orbit-coupled metal candidate PbRe2_2O6_6: one dimensionality and molecular orbital formation

Published 28 Apr 2026 in cond-mat.mtrl-sci and cond-mat.str-el | (2604.25539v1)

Abstract: We present a first-principles investigation of the electronic structure of the inversion-symmetry-broken spin-orbit-coupled metal candidate PbRe<em>2<em>2O6_6. Our calculations reveal that the Fermi surfaces derived from the d</em>yzd</em>{yz} and dzxd_{zx} orbitals exhibit pronounced one-dimensional characteristics, which naturally account for the highly anisotropic charge transport observed experimentally. In addition, the dx<sup>2−y<sup>2d_{x<sup>2-y<sup>2} orbitals on each Re haxagon form molecular orbitals, where the resulting EgE_g molecular states generate nearly dispersionless bands in close proximity to the Fermi level. The coexistence of these quasi-1D Fermi surfaces and molecular-orbital-induced flat bands provides a possible microscopic origin for the successive phase transitions observed in PbRe2_2O6_6.

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