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Mesoscopic Klein-Schwinger effect in graphene

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arxiv 2207.13400 v5 pith:6Q6NL375 submitted 2022-07-27 cond-mat.mes-hall hep-th

Mesoscopic Klein-Schwinger effect in graphene

classification cond-mat.mes-hall hep-th
keywords effectgrapheneelectricpinchoffschwingerstrongballisticcreation
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Strong electric field annihilation by particle-antiparticle pair creation, also known as the Schwinger effect, is a non-perturbative prediction of quantum electrodynamics. Its experimental demonstration remains elusive, as threshold electric fields are extremely strong and beyond current reach. Here, we propose a mesoscopic variant of the Schwinger effect in graphene, which hosts Dirac fermions with an approximate electron-hole symmetry. Using transport measurements, we report on universal 1d-Schwinger conductance at the pinchoff of ballistic graphene transistors. Strong pinchoff electric fields are concentrated within approximately 1 $\mu$m of the transistor's drain, and induce Schwinger electron-hole pair creation at saturation. This effect precedes a collective instability toward an ohmic Zener regime, which is rejected at twice the pinchoff voltage in long devices. These observations advance our understanding of current saturation limits in ballistic graphene and provide a direction for further quantum electrodynamic experiments in the laboratory.

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  1. Classical constant electric fields and the Schwinger effect in de Sitter

    hep-ph 2025-08 unverdicted novelty 6.0

    Constant electric fields in de Sitter require a tachyonic photon mass ~H, yielding finite positive Schwinger currents for massless fermions and scalars after on-shell renormalization.