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Supercooled sugar alcohols stabilized by alkali hydroxides for long-term room-temperature phase change solar-thermal energy storage.

Authors :
Li, Xiaoxiang
Zhang, Jingyi
Liu, Yizhe
Xu, Yangzhe
Cui, Kehang
Yao, Zhenpeng
Fu, Benwei
Song, Chengyi
Shang, Wen
Tao, Peng
Deng, Tao
Source :
Chemical Engineering Journal. Jan2023:Part 3, Vol. 452, pN.PAG-N.PAG. 1p.
Publication Year :
2023

Abstract

Supercooled sugar alcohols stabilized by alkali hydroxides and polydopamine enable direct harvesting and long-term stable phase-change storage of solar-thermal energy at room temperature. [Display omitted] • Supercooled sugar alcohol composites stabilized by alkali hydroxide are designed for long-term heat storage. • A high solar absorptance of 91.6 % and a conserved latent heat of ∼200 J/g for months are achieved. • Smart thermotherapy and seasonable solar-thermal energy harvesting applications are demonstrated. Seasonal thermal energy storage within organic phase change materials (PCMs) offers a promising way to solve intermittency of renewable energy, but the charged PCMs tend to undergo spontaneous crystallization and lose the stored latent heat to cold environment during storage. Herein, we report introduction of alkali hydroxides into sugar alcohols to increase the activation energy barrier for liquid-to-solid phase transition and stabilize the supercooling state, thereby realizing long-term phase change thermal energy storage. Owing to increased intermolecular hydrogen bonding interaction, the charged composites can maintain the supercooled state and conserve latent heat (∼200 J/g) during storage at room temperature or extremely cold temperatures for months. Further compounding with polydopamine organic pigments, the composites demonstrate high solar absorptance (∼91.6 %) and thus enable seasonable storage of solar-thermal energy as latent heat at room temperature. The stored heat can be readily released through adding seed crystals or applying mechanical deformation, which triggers cold crystallization of the supercooled composites and releases latent heat within a suitable temperature range of 40–60 °C. Such phase change composites not only eliminate complicated thermal insulation engineering required in conventional long-term thermal storage processes, but also unlock diverse application opportunities for thermal energy systems. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
13858947
Volume :
452
Database :
Academic Search Index
Journal :
Chemical Engineering Journal
Publication Type :
Academic Journal
Accession number :
159846612
Full Text :
https://doi.org/10.1016/j.cej.2022.139328