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February 12, 2026SHILAP Revista de lepidopterología0 citationsOpen Access

Reactor modeling for two-step solar thermochemical fuel production: a concise review

MRMatteo RiberiFOFrancesco OrsiniDFDomenico Ferrero

Key Points

  • This review focuses on the current state and challenges of modeling reactors for solar thermochemical fuel production using redox materials.
  • Comprehensive literature review on reactor modeling techniques.
  • Identification of common modeling methods considering heat and mass transfer.
  • Analysis of different approaches for chemical reaction and radiative heat transfer.
  • Most studies are aligned with laminar flow conditions and local thermal non-equilibrium in porous media.
  • Diverse modeling approaches exist for chemical reaction kinetics and thermodynamic equilibrium.
  • A significant gap exists in multiphysics models that include redox materials beyond ceria.

Abstract

Solar thermochemical fuel production based on the use of non-volatile, non-stoichiometric redox materials to drive water and carbon dioxide splitting in two-step redox cycles represents a promising approach for efficient solar energy conversion and storage. High theoretical solar-to-fuel efficiencies can be achieved, as reduction and oxidation of redox materials are separated, unlocking the possibility to optimize the thermodynamic conditions of each half-reaction. However, the scale-up of the technology is still hindered by low efficiencies reached by reactor prototypes. In this context, the multiphysics modeling of reactor concepts represents a key tool in the engineering process to find optimal designs and suitable operating conditions. This work presents a comprehensive literature review on reactor modeling, by identifying and discussing the most diffused modeling techniques. Our review unveiled that, in terms of heat and mass transfer modeling, most of the studies are aligned in considering laminar flow conditions and local thermal non-equilibrium between the solid and fluid phases in the reactive porous medium. On the other hand, diverse approaches were proposed to include the chemical reaction and radiative heat transfer in the reactor model. Specifically, the redox reaction is modelled either by assuming thermodynamic equilibrium or by including kinetics, with several expressions proposed up to date. The main literature gap identified in the present study is represented by the limited number of multiphysics models that integrate redox materials other than state-of-the-art ceria, as well as innovative reactor designs aiming at overcoming the main limitations of state-of-the-art systems.

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Cite This Study

Riberi et al. (2026) studied this question.

synapsesocial.com/papers/698d6d695be6419ac0d5249dhttps://doi.org/10.3389/fenrg.2025.1671615
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