气凝胶
材料科学
太阳能集热器中的纳米流体
热导率
能量转换效率
化学工程
热管
传热
太阳能
复合材料
光电-热混合太阳能集热器
光电子学
热力学
物理
工程类
生物
生态学
作者
Jingyuan Zhao,Xuan Wu,Huimin Yu,Yida Wang,Pan Wu,Xiaofei Yang,Dewei Chu,Gary Owens,Haolan Xu
出处
期刊:EcoMat
[Wiley]
日期:2022-11-07
卷期号:5 (3)
被引量:57
摘要
Abstract Direct conversion of low‐grade heat into electricity by thermal electrochemical cells is a promising strategy for energy generation. For stable heat‐to‐electricity conversion, maintaining a low‐grade heat induced temperature difference between the cell electrodes is essential. Here, a thermogalvanic cell consisting of a cellulose fiber‐based porous aerogel, a liquid electrolyte, a reduced graphene oxide light absorber, and carbon nanotube‐based electrodes is designed for low‐grade thermal energy harvesting and conversion. The low thermal conductivity of the porous cellulose aerogel enables limited heat transfer from the hot side to the cold side, and thermal energy management effectively reduces heat loss from the hot side to the environment. Thus, a sustainable temperature difference between the electrodes is maintained and a corresponding maximum power output of 6.94 mW m−2 is achieved under natural solar irradiation. The obtained thermal electrochemical cells are also integrated into an enclosed interfacial solar evaporation device to harvest the latent heat released from vapor condensation for electricity generation. In addition, the thermal electrochemical cells can be regenerated after 18 months of storage and show no performance degradation. This design thus offers a novel alternative strategy for practical low‐grade heat harvesting. image
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