工艺工程
固体氧化物燃料电池
电解
能量转换
航程(航空)
高效能源利用
氧化物
焓
还原(数学)
燃料电池
合成气
电压
极化(电化学)
质子交换膜燃料电池
材料科学
太阳能
能量转换效率
化学
核工程
能源消耗
热化学循环
燃料效率
环境科学
化学能
燃烧
传质
氧气
辐射传输
太阳能燃料
热力学
法拉第效率
储能
节能
能量(信号处理)
浓差极化
计算机科学
太阳炉
化学工程
分布式发电
热回收通风
作者
Lei Zhao,Yuzhu Chen,Da Xu,Runsen Wang,Shuai Deng,Meng Lin
出处
期刊:ACS energy letters
[American Chemical Society]
日期:2025-11-14
卷期号:10 (12): 6169-6177
被引量:1
标识
DOI:10.1021/acsenergylett.5c02790
摘要
Efficient solar-to-fuel conversion demands the integration of multiple energy inputs to overcome the thermodynamic barrier for CO 2 reduction. Here, we develop and validate a unified modeling framework for a solar-driven membrane reactor that couples thermal, electrical, and mechanical driving forces within a solid oxide electrolysis cell (SOEC)-type configuration. The model is benchmarked against experimental polarization data over a wide range of temperatures and oxygen partial pressures, showing agreement within ±5%. Mapping this hybrid operating space identifies an optimal window (1473–1673 K, p O 2 > 10 –2 atm) that achieves peak solar-to-fuel efficiency of 30.4%. While higher temperatures reduce voltage requirements, radiative and enthalpy penalties dominate at elevated temperature. The analysis quantifies trade-offs associated with the operating voltage, gas separation work, and mass transport limitations. These findings define practical efficiency limits and offer experimentally grounded design principles for scalable, high-performance solar fuel systems enabled by hybrid energy pathways.
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