热电发电机
材料科学
热能储存
热电冷却
蒸发冷却器
储能
蒸发
潜热
功率密度
发电
核工程
热电效应
串联
热能
工艺工程
发电机(电路理论)
环境科学
功率(物理)
电
余热
体积热力学
相变材料
冷却能力
温度梯度
被动冷却
水冷
太阳能
热的
热导率
电势能
高效能源利用
可再生能源
机械工程
能量(信号处理)
最大功率原理
图层(电子)
能量转换
冷库
显热
能量转换效率
作者
Jing Cao,Xiang Liang,Surasak Ruamruk,Soe Ko Ko Aung,Sai Kishore Ravi,TT Phan,T Seetawan,Yujie Ke,G. P. Zhang,Ady Suwardi
标识
DOI:10.1002/sstr.202500635
摘要
This article presents a tandem hydrogel‐phase change material (PCM)‐thermoelectric generator (TEG) structure for evaporation‐driven cold energy storage and electricity harvesting. The hydrogel layer facilitates water evaporation under ambient conditions, generating a cooling effect that produces “cold energy”. This energy is stored in a PCM layer as latent energy, maintaining a stable temperature gradient without volume changes or leakage. The integrated TEG converts this gradient into electricity during both charging (evaporation‐induced cooling and PCM solidification) and discharging (PCM melting and heat release) phases, enabling dual‐phase power generation. Experimental results demonstrate a maximum power output of 1.6 mW and a power density of 100 μW/cm 2 at ambient condition without energy input. In addition, we demonstrate an average power output of 0.3 mW and a power density of 19 μW/cm 2 for a fully charged PCM under ambient conditions, with a cooling efficiency that reduces surface temperatures of TEG by up to 5°C. This article represents the first demonstration of simultaneous storage and utilization of evaporation thermal energy for electricity generation. This innovative design combines evaporative cooling, latent energy storage, and thermoelectric conversion, advancing sustainable energy solutions for low‐grade heat environments and efficiently powering portable electronics.
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