Linear displacement current solely driven by the quantum metric
Longjun Xiang, Bin Wang, Yadong Wei, Zhenhua Qiao, Jian Wang

TL;DR
This paper develops a quantum theory showing that the linear displacement current in Bloch electrons is driven solely by the quantum metric, revealing a geometric duality with the Berry curvature and predicting an intrinsic Hall effect in time-reversal invariant materials.
Contribution
It establishes that the T-even linear displacement current conductivity is determined by the quantum metric, introducing a new intrinsic Hall effect in T-invariant systems.
Findings
T-even displacement current is driven by quantum metric
Displacement current can contribute Hall current in T-invariant systems
Enhancement of displacement current near Dirac points due to quantum metric divergence
Abstract
Quantum metric and Berry curvature are the real part and imaginary part of the quantum geometric tensor, respectively. The T-odd (T: time-reversal) nonlinear Hall effect driven by the quantum metric dipole, recently confirmed in Science 381, 181 (2023) and Nature 621, 487 (2023), established the geometric duality to the T-even nonlinear Hall effect that driven by the Berry curvature dipole. Interestingly, a similar geometric duality between the quantum metric and the Berry curvature, particularly for the linear response of Bloch electrons, has not been established, although the T-odd linear intrinsic anomalous Hall effect (IAHE) solely driven by the Berry curvature has been known for a long time. Herein, we develop the quantum theory for displacement current under an AC electric field. Particularly, we show that the T-even component of the linear displacement current conductivity (LDCC)…
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Taxonomy
TopicsMagnetic Field Sensors Techniques · Non-Destructive Testing Techniques · Magneto-Optical Properties and Applications
