Quantum Interference Supernodes, Thermoelectric Enhancement, and the Role of Dephasing

Fuente: arXiv
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Autor principal: Bergfield, Justin P.
Formato: Preprint
Publicado: 2025
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author Bergfield, Justin P.
author_facet Bergfield, Justin P.
contents Quantum interference (QI) can strongly enhance thermoelectric response, with higher-order "supernodes" predicted to yield scalable gains in thermopower and efficiency. A central question, however, is whether such features are intrinsically more fragile to dephasing. Using $Büttiker$ voltage-temperature probes, we establish an order-selection rule: the effective near-node order is set by the lowest among coherent and probe-assisted channels. Supernodes are therefore fragile in an absolute sense because their transmission is parametrically suppressed with order. However, once an incoherent floor dominates, the fractional suppression of thermopower, efficiency, and figure of merit becomes universal and order-independent. Illustrating these principles with benzene- and biphenyl-based junction calculations, we show that the geometry of environmental coupling -- through a single orbital or across many -- dictates whether coherence is lost by order reduction or by floor building. These results yield general scaling rules for the thermoelectric response of interference nodes under dephasing.
format Preprint
id arxiv_https___arxiv_org_abs_2508_20352
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Quantum Interference Supernodes, Thermoelectric Enhancement, and the Role of Dephasing
Bergfield, Justin P.
Mesoscale and Nanoscale Physics
Other Condensed Matter
Statistical Mechanics
Quantum interference (QI) can strongly enhance thermoelectric response, with higher-order "supernodes" predicted to yield scalable gains in thermopower and efficiency. A central question, however, is whether such features are intrinsically more fragile to dephasing. Using $Büttiker$ voltage-temperature probes, we establish an order-selection rule: the effective near-node order is set by the lowest among coherent and probe-assisted channels. Supernodes are therefore fragile in an absolute sense because their transmission is parametrically suppressed with order. However, once an incoherent floor dominates, the fractional suppression of thermopower, efficiency, and figure of merit becomes universal and order-independent. Illustrating these principles with benzene- and biphenyl-based junction calculations, we show that the geometry of environmental coupling -- through a single orbital or across many -- dictates whether coherence is lost by order reduction or by floor building. These results yield general scaling rules for the thermoelectric response of interference nodes under dephasing.
title Quantum Interference Supernodes, Thermoelectric Enhancement, and the Role of Dephasing
topic Mesoscale and Nanoscale Physics
Other Condensed Matter
Statistical Mechanics
url https://arxiv.org/abs/2508.20352