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Thermal batteries based on inverse barocaloric effects.

Zhe ZhangKuo LiShangchao LinRuiqi SongDehong YuYida WangJingfan WangShogo KawaguchiZhao ZhangChenyang YuXiaodong LiJie ChenLunhua HeRichard A MoleBao YuanQingyong RenKun QianZhuangli CaiJingui YuMingchao WangChangying ZhaoXin TongZhidong ZhangBing Li
Published in: Science advances (2023)
To harvest and reuse low-temperature waste heat, we propose and realize an emergent concept-barocaloric thermal batteries based on the large inverse barocaloric effect of ammonium thiocyanate (NH 4 SCN). Thermal charging is initialized upon pressurization through an order-to-disorder phase transition, and the discharging of 43 J g -1 takes place at depressurization, which is 11 times more than the input mechanical energy. The thermodynamic equilibrium nature of the pressure-restrained heat-carrying phase guarantees stable long-duration storage. The barocaloric thermal batteries reinforced by their solid microscopic mechanism are expected to substantially advance the ability to take advantage of waste heat.
Keyphrases
  • heat stress
  • heavy metals
  • solid state
  • wastewater treatment
  • sewage sludge
  • ionic liquid
  • risk assessment
  • aqueous solution
  • room temperature
  • anaerobic digestion