Unlocking the power of LiOH: Key to next-generation ultra-compact thermal energy storage systems

This study explores the potential of untapped lithium hydroxide (LiOH) as a phase change material for thermal energy storage. By overcoming the challenges associated with the liquid LiOH leakage, we successfully thermal-cycled LiOH in a laboratory scale experimentation, and observed its stability (&...

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Published in:Heliyon
Main Authors: F. Achchaq, S.-C. Moon, P. Legros
Format: Article
Language:English
Published: Elsevier 2024-07-01
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2405844024100230
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author F. Achchaq
S.-C. Moon
P. Legros
author_facet F. Achchaq
S.-C. Moon
P. Legros
author_sort F. Achchaq
collection DOAJ
container_title Heliyon
description This study explores the potential of untapped lithium hydroxide (LiOH) as a phase change material for thermal energy storage. By overcoming the challenges associated with the liquid LiOH leakage, we successfully thermal-cycled LiOH in a laboratory scale experimentation, and observed its stability (>500 thermal cycles), without chemical decomposition. This step has never been performed to date. Its solid-to-liquid reversible transitions temperatures and related solidification/melting enthalpies values have been verified. Then, the first experimental characterization of LiOH's thermal properties shows unexpected values for its heat capacity, thermal conductivity and diffusivity, in contradiction with the few ones available in literature. This opens avenues for LiOH's applications for the storage of sensible and latent heat, as shown through the increased cycle efficiency potential of a thermal energy storage system if based on its energy storage capacity; up to six times more volumetric energy density compared to traditional Solar Salt-based systems used in the solar tower plant (4.5 GJ/m3 vs. 0.76 GJ/m3 over 1000 thermal cycles). Additionally, we observed a softening phenomenon that occurs inconsistently during heating, but which may account for its excellent melting properties and the interplay with other raw chemicals. This new insight contributes certainly to the underlying mechanisms in the synthesis of another promising heat storage material in development: the peritectic compound Li4Br(OH)3. This pioneering work suggests LiOH as a promising ultra-compact thermal energy storage material for filling the intermediary gap from current to next-generation solar power plants, although its large-scale application requires further investigation to achieve economic viability.
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spelling doaj-art-89ce73e4e1a6443da95c4ecb4b76cdce2025-08-19T23:51:20ZengElsevierHeliyon2405-84402024-07-011013e3399210.1016/j.heliyon.2024.e33992Unlocking the power of LiOH: Key to next-generation ultra-compact thermal energy storage systemsF. Achchaq0S.-C. Moon1P. Legros2University of Bordeaux, CNRS, Bordeaux INP, I2M, UMR 5295, F-33400 Talence, France; Arts et Metiers Institute of Technology, CNRS, Bordeaux INP, Hesam University, I2M, UMR 5295, F-33400 Talence, France; Corresponding author. University of Bordeaux, CNRS, Bordeaux INP, I2M, UMR 5295, F-33400, Talence, France.School of Mechanical, Materials, Mechatronic and Biomedical Engineering, University of Wollongong, NSW 2522, AustraliaUniversity of Bordeaux, CNRS, PLACAMAT, UAR 3626, F-33600 Pessac, FranceThis study explores the potential of untapped lithium hydroxide (LiOH) as a phase change material for thermal energy storage. By overcoming the challenges associated with the liquid LiOH leakage, we successfully thermal-cycled LiOH in a laboratory scale experimentation, and observed its stability (>500 thermal cycles), without chemical decomposition. This step has never been performed to date. Its solid-to-liquid reversible transitions temperatures and related solidification/melting enthalpies values have been verified. Then, the first experimental characterization of LiOH's thermal properties shows unexpected values for its heat capacity, thermal conductivity and diffusivity, in contradiction with the few ones available in literature. This opens avenues for LiOH's applications for the storage of sensible and latent heat, as shown through the increased cycle efficiency potential of a thermal energy storage system if based on its energy storage capacity; up to six times more volumetric energy density compared to traditional Solar Salt-based systems used in the solar tower plant (4.5 GJ/m3 vs. 0.76 GJ/m3 over 1000 thermal cycles). Additionally, we observed a softening phenomenon that occurs inconsistently during heating, but which may account for its excellent melting properties and the interplay with other raw chemicals. This new insight contributes certainly to the underlying mechanisms in the synthesis of another promising heat storage material in development: the peritectic compound Li4Br(OH)3. This pioneering work suggests LiOH as a promising ultra-compact thermal energy storage material for filling the intermediary gap from current to next-generation solar power plants, although its large-scale application requires further investigation to achieve economic viability.http://www.sciencedirect.com/science/article/pii/S2405844024100230Alkali metal hydroxidePCMEnthalpy-temperature functionSofteningAnisotropyThermal property
spellingShingle F. Achchaq
S.-C. Moon
P. Legros
Unlocking the power of LiOH: Key to next-generation ultra-compact thermal energy storage systems
Alkali metal hydroxide
PCM
Enthalpy-temperature function
Softening
Anisotropy
Thermal property
title Unlocking the power of LiOH: Key to next-generation ultra-compact thermal energy storage systems
title_full Unlocking the power of LiOH: Key to next-generation ultra-compact thermal energy storage systems
title_fullStr Unlocking the power of LiOH: Key to next-generation ultra-compact thermal energy storage systems
title_full_unstemmed Unlocking the power of LiOH: Key to next-generation ultra-compact thermal energy storage systems
title_short Unlocking the power of LiOH: Key to next-generation ultra-compact thermal energy storage systems
title_sort unlocking the power of lioh key to next generation ultra compact thermal energy storage systems
topic Alkali metal hydroxide
PCM
Enthalpy-temperature function
Softening
Anisotropy
Thermal property
url http://www.sciencedirect.com/science/article/pii/S2405844024100230
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