CO2直接空气捕集固体吸附材料研究进展

作者

  • 郑健飞 能源与环境学院,东南大学;能源热转换及其过程测控教育部重点实验室,东南大学
  • 陈晓平 能源与环境学院,东南大学;能源热转换及其过程测控教育部重点实验室,东南大学
  • 马吉亮 能源与环境学院,东南大学;能源热转换及其过程测控教育部重点实验室,东南大学
Ariticle ID: 80
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DOI:

https://doi.org/10.18686/cncest.v1i2.80

关键词:

直接空气捕集CO2 ;吸附剂;溶液吸收;固体吸附;经济性

摘要

直接空气捕集CO2技术是一种不受时间和地域限制的负碳排放技术,可为“双碳”目标实现贡献力量。本文综述了CO2直接空气捕集方法的发展现状,着重介绍了固体吸附空气捕集(direct air capture, DAC)技术中金属有机框架(metal-organic frameworks, MOFs)材料、固体胺材料、碱金属基吸附剂和变湿材料四种主流固体吸附DAC技术,分析了它们在能耗、循环稳定性和吸附量等方面的优势和劣势;此外,文章分析了固体吸附材料工程应用,展示这些技术在实际应用中的潜力;最后,总结了现有DAC吸附材料面临的挑战并提出了未来发展方向。

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固体胺类吸附剂空气捕集示意图

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2023-12-12

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郑健飞, 陈晓平, & 马吉亮. (2023). CO2直接空气捕集固体吸附材料研究进展. 清洁能源科学与技术, 1(2), 80. https://doi.org/10.18686/cncest.v1i2.80

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