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April 16, 2026Energy Technology0 citations

A Review: Progress in Thermochemical Energy Storage Based on CaCO 3 /CaO Materials for Concentrating Solar Power

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HWHX WuYLYun LuoJCJuan Chen

Key Points

  • This review aims to evaluate the performance and limitations of calcium-based materials in thermochemical energy storage for solar power.
  • Critical evaluation of solid–gas reactor designs such as fixed-bed, entrained-flow, rotary, and fluidized-bed.
  • Assessment of strategies for enhancing solar energy absorption and conversion efficiency.
  • Examination of issues like ash deposition, erosion, and clogging in reactor systems.
  • Identified challenges in the design of solar reactors and the deactivation of CaCO3/CaO materials during cycles.
  • Summarized recent advancements in technologies and strategies to enhance performance in thermochemical energy storage.
  • Discussed the need for novel dopant elements and optimized material preparation processes to improve stability and efficiency.

Abstract

Calcium‐based materials are widely recognized for their low cost and high energy density, and thermochemical energy storage (TCES) using calcium looping (CaL) has demonstrated greater potential than other high‐temperature energy storage systems in concentrated solar power (CSP) applications. However, the practical implementation of CaL‐CSP systems is still hindered by two critical factors: the complex design of solar reactors and the sintering‐induced deactivation of CaCO 3 /CaO particles during repeated cycles. To provide targeted solutions to these challenges, this review critically evaluates the performance and limitations of various solid–gas reactors, including fixed‐bed, entrained‐flow, rotary, and fluidized‐bed designs—under both direct and indirect solar irradiation modes. Particular attention is given to the need for improving solar energy absorption and conversion efficiencies, as well as resolving issues such as ash deposition, erosion, and clogging within reactor systems. In addition, recent advancements in CaCO 3 /CaO TCES technologies are summarized, with a specific focus on performance‐enhancing strategies such as dopant modification, precursor selection, particle size optimization, and optimized calcination conditions. Future research may further explore the introduction of novel dopant elements and the optimization of material preparation processes to enhance multicycle stability and storage efficiency.

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Cite This Study

Wu et al. (2026) studied this question.

synapsesocial.com/papers/69e07cc02f7e8953b7cbde62https://doi.org/10.1002/ente.202502012
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