A first--order irreversible thermodynamic approach to a simple energy converter
L. A. Arias-Hern\'andez, R. T. Paez-Hern\'andez, F. Angulo-Brown

TL;DR
This paper applies First-Order Irreversible Thermodynamics to model energy converters, demonstrating loop-shaped efficiency curves and proposing a new understanding of oxidative phosphorylation without conductance matching.
Contribution
It extends FOIT to show loop-shaped performance curves and challenges previous conductance matching assumptions in oxidative phosphorylation modeling.
Findings
Loop-shaped power and ecological function curves against efficiency.
Oxidative phosphorylation does not operate at minimum entropy production.
Optimal performance involves maximizing ecological function and efficiency.
Abstract
Several authors have shown that dissipative thermal cycle models based on Finite-Time Thermodynamics exhibit loop-shaped curves of power output versus efficiency, such as it occurs with actual dissipative thermal engines. Within the context of First-Order Irreversible Thermodynamics (FOIT), in this work we show that for an energy converter consisting of two coupled fluxes it is also possible to find loop-shaped curves of both power output and the so-called ecological function against efficiency. In a previous work Stucki [J.W. Stucki, Eur. J. Biochem. vol. 109, 269 (1980)] used a FOIT-approach to describe the modes of thermodynamic performance of oxidative phosphorylation involved in ATP-synthesis within mithochondrias. In that work the author did not use the mentioned loop-shaped curves and he proposed that oxidative phosphorylation operates in a steady state simultaneously at minimum…
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