Abstract

Calcium looping (CaL) process, a thermochemical energy storage technique, probably offers a mid-term if not near-term solution to the next generation Concentrated Solar Power (CSP) plants featured with high temperature over 700 °C. However, CaCO 3 used in the conventional CaL-CSP system is usually white with little absorption of sun light, hindering its application in efficient volumetric solar energy conversion scheme. This work decorates CaO with dark Ca 2 MnO 4 derived from natural manganocalcite, achieving direct solar absorption and simultaneously enhanced anti-sintering ability due to the presence of dark Ca 2 MnO 4 . As a thermal stabilizer, Ca 2 MnO 4 minimized the sintering-induced decay of the materials' energy storage density and ensured high and stable energy storage performance over prolonged operation cycles. Detailed electron microscopy-based analysis confirmed the compositional homogeneity which is identified, together with the porous structures, as the crucial feature to guarantee a stable performance. Over 20 cycles, CaO/Ca 2 MnO 4 nanoparticles still remained energy storage density of 1932 kJ/kg, exceeding that of the limestone-derived reference material by nearly 100%. Additionally, the average solar absorptance of Ca 2 MnO 4 -stabilized calcium composite is remarkably enhanced in comparison with that of conventional limestone. This work paves the way for designing materials with high energy storage density and excellent cyclic stability for simultaneous solar thermal conversion and high-temperature thermochemical energy storage. • CaO was decorated with dark Ca 2 MnO 4 by calcining natural manganocalcite. • Dark Ca 2 MnO 4 enhanced the direct solar absorption ability of CaCO 3 . • The sintering resistance of calcium composites was improved by inert Ca 2 MnO 4 support. • Dark CaO/Ca 2 MnO 4 composite achieved stable thermochemical energy storage.

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