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Thermochemical energy storage in SrCO3 composites with SrTiO3 or SrZrO3

dc.contributor.authorWilliamson, Ken_AU
dc.contributor.authorLiu, Yen_AU
dc.contributor.authorHumphries, TDen_AU
dc.contributor.authorD'Angelo, AMen_AU
dc.contributor.authorPaskevicius, Men_AU
dc.contributor.authorBuckley, CEen_AU
dc.date.accessioned2026-08-13T05:41:16Zen_AU
dc.date.issued2024-04-01en_AU
dc.date.statistics2026-05-26en_AU
dc.description.abstractThermochemical energy storage offers a cost-effective and efficient approach for storing thermal energy at high temperature (∼1100 °C) for concentrated solar power and large-scale long duration energy storage. SrCO3 is a potential candidate as a thermal energy storage material due to its high energy density of 205 kJ/mol of CO2 during reversible CO2 release and absorption. However, it loses cyclic capacity rapidly due to sintering. This study determined that the cyclic capacity of SrCO3 was enhanced by the addition of either reactive SrTiO3 or inert SrZrO3, where the molar ratios of SrCO3 to SrZrO3 were varied from 1:0.125 to 1:1. Thermogravimetric analysis over 15 CO2 sorption cycles demonstrated that both materials retained ∼80 % of their maximum cyclic capacity on the milligram scale. Repeated measurements using gram scale samples revealed a decrease in maximum capacity to 11 % using a sample of SrCO3 – 0.5 SrZrO3 over 53 cycles, while the use of SrTiO3 additives allowed for the retention of 80 % maximum capacity over 55 cycles. These findings highlight the potential of reactive additives in enhancing the performance of thermochemical energy storage systems, while providing valuable insights for the development of cost-effective materials. © 2024 The Author(s). Published by Elsevier Ltd. Open Access CC BY 4.0.en_AU
dc.description.sponsorshipCEB, MP and TDH acknowledge the Global Innovation Linkage project for grant GIL73589. CEB, MP, TDH acknowledge the Australian Research Council for ARC Discovery project grant DP200102301. KW acknowledges the Australian Government for an Australian Government Research Training Program Scholarship. This research was supported by an AINSE Ltd through a Postgraduate Research Award (PGRA) for KW. SEM and XRD research were undertaken using the Tescan Mira3 EM (ARC LE130100053) and the Bruker D8 Advance XRD instrumentation (ARC LE0775551) at the John de Laeter Centre, Curtin University. ANSTO is acknowledged for providing access to the PD beamline at the Australian Synchrotron, Melbourne, Australia.en_AU
dc.identifier.articlenumber130524en_AU
dc.identifier.citationWilliamson, K., Liu, Y., Humphries, T. D., D'Angelo, A. M., Paskevicius, M., & Buckley, C. E. (2024). Thermochemical energy storage in SrCO3 composites with SrTiO3 or SrZrO3. Energy, 292, 130524. doi:10.1016/j.energy.2024.130524en_AU
dc.identifier.issn0360-5442en_AU
dc.identifier.journaltitleEnergyen_AU
dc.identifier.urihttps://doi.org/10.1016/j.energy.2024.130524en_AU
dc.identifier.urihttps://apo.ansto.gov.au/handle/10238/17321en_AU
dc.identifier.volume292en_AU
dc.languageEnglishen_AU
dc.language.isoenen_AU
dc.publisherElsevieren_AU
dc.subjectStrontiumen_AU
dc.subjectTitaniumen_AU
dc.subjectZirconiumen_AU
dc.subjectEnergy storageen_AU
dc.subjectComposite materialsen_AU
dc.subjectTemperature rangeen_AU
dc.subjectSorptionen_AU
dc.subjectCarbon dioxideen_AU
dc.subjectStrontium carbonatesen_AU
dc.subjectStrontium Titanatesen_AU
dc.titleThermochemical energy storage in SrCO3 composites with SrTiO3 or SrZrO3en_AU
dc.typeJournal Articleen_AU

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