Heat-engine operation forces a universal Fano-factor floor of F>1/2 for fermionic coherent thermoelectric transport and F>1 for bosonic or classical carriers.
A thermodynamic uncertainty relation for (hybrid) N--S coherent conductors
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abstract
Thermodynamic uncertainty relations establish fundamental bounds between current fluctuations and entropy production in nonequilibrium systems. In hybrid normal superconducting conductors, transport is governed by the coexistence of quasiparticle transmission and Andreev reflection, where electron hole conversion transfers charge through the superconducting condensate. Using the Anantram Datta scattering formalism, we decompose the charge current and zero-frequency noise into Andreev, quasiparticle, and interference contributions. Although the interference term prevents a simple additive bound at the level of individual noise components, we show that the nonequilibrium excess noise admits a positive representation. This allows us to prove a hybrid quantum thermodynamic uncertainty relation valid for an arbitrary real superconducting gap. Our result extends the pure Andreev quantum TUR to regimes where quasiparticle and Andreev processes coexist, clarifying how superconducting coherence reshapes current fluctuations while preserving a universal dissipation precision constraint in hybrid quantum conductors.
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cond-mat.mes-hall 1years
2026 1verdicts
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Thermodynamic bound on the Fano factor of a coherent thermoelectric heat engine
Heat-engine operation forces a universal Fano-factor floor of F>1/2 for fermionic coherent thermoelectric transport and F>1 for bosonic or classical carriers.