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Nonreciprocal Perfect Coulomb Drag in Electron-Hole Bilayers: Coherent Exciton Superflow as a Diode
Phys. Rev. Lett. 137, 136001 – Published 22 September, 2026
DOI: https://doi.org/10.1103/rbvy-4rwd
Abstract
Distinguishing an exciton condensate from an excitonic gas or insulator remains a fundamental challenge, as both phases feature bound electron-hole pairs but differ only by the emergence of macroscopic phase coherence. Here, we theoretically propose that a spin-orbit-coupled bilayer system can host a finite-momentum exciton condensate exhibiting a nonreciprocal perfect Coulomb drag—the coherent-exciton diode effect. This effect arises from the simultaneous breaking of inversion and time-reversal symmetries in the exciton condensate, resulting in direction-dependent critical counterflow currents. The resulting nonreciprocal perfect Coulomb drag provides a clear and unambiguous transport signature of phase-coherent exciton condensation, offering a powerful and experimentally accessible approach to identify, probe, and control exciton superfluidity in solid-state platforms.
Physics Subject Headings (PhySH)
synopsis
How to Tell If Your Excitons Have Condensed
A newly predicted effect should provide a clean way to distinguish between a Bose-Einstein condensate of quasiparticles called excitons and a more mundane collection of these particles.
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