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Universal Optical Conductivity from Quantum Geometry in Quadratic Band-Touching Semimetals

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arxiv 2503.18372 v1 pith:KZI3SHO3 submitted 2025-03-24 cond-mat.str-el

classification cond-mat.str-el
keywords opticalquantumconductivitygeometricgeometrymathrmpropertiessemimetals
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abstract

Exploring the quantum geometric properties of solids beyond their topological aspects has become a key focus in current solid-state physics research. We derive the geometric formula for optical conductivity from the quantum metric tensor, applicable to the low-energy regime. This general formulation also depends on the detailed shape of the band dispersion in addition to the geometric properties of the Bloch wave function. We demonstrate, however, that for quadratic band-touching (QBT) semimetals, the optical conductivity simplifies to $\sigma = (e^2/8\hbar)d^2_\mathrm{max}$ when the light frequency exceeds a critical threshold, where $d_\mathrm{max}$ represents the maximum Hilbert-Schmidt quantum distance around the band-crossing point. This result indicates that the optical conductivity of QBT semimetals is universal and determined entirely by quantum geometry, independent of other details of the band structure. Furthermore, under time-reversal and rotational symmetries, $d_\mathrm{max}$ is restricted to discrete values of 0 or 1, leading to a quantized universal optical conductivity. Through first-principles calculations, we show that our findings are applicable to real materials, including bilayer graphene, Pd$_3$P$_2$S$_8$, and other realistic material candidates. Our work underscores the critical role of quantum geometry in governing optical properties, which can be probed through standard optical methods.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Color and Transparency from Quantum Geometry

    physics.optics 2025-07 conditional novelty 6.0 of 10

    The perceived color and transparency of model materials can be changed purely by tuning the quantum geometry of Bloch wavefunctions, with the energy dispersion held fixed.

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