生产(经济)
甲烷
可扩展性
环境科学
工艺工程
材料科学
工程类
计算机科学
化学
经济
有机化学
数据库
宏观经济学
作者
Angela R. A. Maragno,Grégory Cwicklinski,Muriel Matheron,Romain Vanoorenberghe,Jean-Marc Borgard,Adina Morozan,Jennifer Fize,Michel Pellat,Christine Cavazza,Vincent Artero,Sophie Charton
出处
期刊:Joule
[Elsevier]
日期:2024-06-13
卷期号:8 (8): 2325-2341
被引量:2
标识
DOI:10.1016/j.joule.2024.05.012
摘要
The solar-driven conversion of CO2 into molecules with high calorific value is a major challenge to reduce the carbon footprint of industrialized countries. Many concepts are proposed, but limited action has been undertaken so far to design, integrate, and scale commercially viable technologies. Here, we report on the long-term performance of an autonomous solar-driven device that continuously converts CO2 into CH4 under mild conditions. It couples a biomethanation reactor to a set of integrated photoelectrochemical cells, combining silicon/perovskite tandem solar cells with proton exchange membrane electrolyzers, for the production of solar hydrogen from water. The 5.5% solar-to-fuel yield (calculated from global horizontal irradiance) achieved by the bench-scale device during 72 h of outdoor operation at JRC, Ispra, Italy, in July 2022, demonstrates that re-design and close integration of proven lab-scale concepts can overcome the technological barriers to the industrial deployment of artificial photosynthesis process.
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