聚合物电解质膜电解
电解
可再生能源
高温电解
化学
电解水
碱性水电解
制氢
电解质
工艺工程
电力转天然气
能量载体
氢
能量转换
化学工程
热力学
有机化学
工程类
电极
物理
物理化学
电气工程
作者
Weizhe Zhang,Menghua Liu,Xin Gu,Yixiang Shi,Zhanfeng Deng,Ningsheng Cai
出处
期刊:Chemical Reviews
[American Chemical Society]
日期:2023-02-07
卷期号:123 (11): 7119-7192
被引量:112
标识
DOI:10.1021/acs.chemrev.2c00573
摘要
Since severe global warming and related climate issues have been caused by the extensive utilization of fossil fuels, the vigorous development of renewable resources is needed, and transformation into stable chemical energy is required to overcome the detriment of their fluctuations as energy sources. As an environmentally friendly and efficient energy carrier, hydrogen can be employed in various industries and produced directly by renewable energy (called green hydrogen). Nevertheless, large-scale green hydrogen production by water electrolysis is prohibited by its uncompetitive cost caused by a high specific energy demand and electricity expenses, which can be overcome by enhancing the corresponding thermodynamics and kinetics at elevated working temperatures. In the present review, the effects of temperature variation are primarily introduced from the perspective of electrolysis cells. Following an increasing order of working temperature, multidimensional evaluations considering materials and structures, performance, degradation mechanisms and mitigation strategies as well as electrolysis in stacks and systems are presented based on elevated temperature alkaline electrolysis cells and polymer electrolyte membrane electrolysis cells (ET-AECs and ET-PEMECs), elevated temperature ionic conductors (ET-ICs), protonic ceramic electrolysis cells (PCECs) and solid oxide electrolysis cells (SOECs).
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