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1.中国矿业大学江苏省煤基温室气体减排与资源化利用重点实验室,江苏 徐州 221008
2.中国矿业大学碳中和研究院,江苏 徐州 221008
3.河南心连心化学工业集团股份有限公司,河南 新乡 453700
Received:25 November 2025,
Revised:2026-01-07,
Online First:24 February 2026,
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夏颖, 陆诗建, 康国俊, 刘玲, 华凯敏, 马艳辉, 杨菲, 侯婷, 于畅. β-环糊精包合物抑制AEEA烟气碳捕集降解研究[J]. 化工学报,
XIA Ying, LU Shijian, KANG Guojun, LIU Ling, HUA Kaimin, MA Yanhui, YANG Fei, HOU Ting, YU Chang. Study on inhibition of AEEA degradation in flue gas carbon capture by β-cyclodextrin inclusion complexes[J]. CIESC Journal,
夏颖, 陆诗建, 康国俊, 刘玲, 华凯敏, 马艳辉, 杨菲, 侯婷, 于畅. β-环糊精包合物抑制AEEA烟气碳捕集降解研究[J]. 化工学报, DOI: 10.11949/0438-1157.20251315
XIA Ying, LU Shijian, KANG Guojun, LIU Ling, HUA Kaimin, MA Yanhui, YANG Fei, HOU Ting, YU Chang. Study on inhibition of AEEA degradation in flue gas carbon capture by β-cyclodextrin inclusion complexes[J]. CIESC Journal, DOI: 10.11949/0438-1157.20251315
化学吸收法是目前最具规模化应用的CO
2
捕集技术之一,但胺吸收剂在捕集过程中易降解,导致捕集成本增加。相比于传统单乙醇胺(MEA),N-(2-羟乙基)乙二胺(AEEA)具有CO
2
吸收量高和反应速率快等优点。然而AEEA在含氧环境下易降解的问题限制了其进一步应用。针对AEEA开展了负载CO
2
、高温和高O
2
分压条件下的降解实验研究,开发了采用β-环糊精(β-CD)作为载体包合带有活性羟基的酚类作为AEEA体系的降解抑制剂,分析添加降解抑制剂前后AEEA的性能变化,提出了“物理包合-化学协同-自由基还原”抑制氧化降解的协同方法。研究发现,随降解时间的延长,空白AEEA的CO
2
吸收/解吸性能和降解率呈阶梯式下降趋势。而添加0.1 vt% β-CD包合物后,CO
2
吸收量提高131.03%,解吸量提高58.49%。
Chemical absorption is one of the most
scalable CO
2
capture technologies currently available
yet amine absorbents are prone to degradation during the capture process
leading to increased costs. Compared with conventional monoethanolamine (MEA)
N-(2-hydroxyethyl)ethylenediamine (AEEA) offers advantages such as higher CO
2
absorption capacity and faster reaction rate. However
its susceptibility to degradation in oxygen-containing environments limits further application. To address this
degradation experiments were conducted on AEEA under CO
2
loaded
high temperature
and high O
2
partial pressure conditions. A degradation inhibitor was developed using β-cyclodextrin (β-CD) as a carrier to encapsulate phenols containing active hydroxyl groups for the AEEA system. Performance changes of AEEA before and after adding the inhibitor were analyzed
and a synergistic approach termed "physical encapsulation–chemical synergy–free radical reduction" was proposed to suppress oxidative degradation. The results showed that with prolonged degradation time
the CO
2
absorption/desorption performance and degradation rate of blank AEEA declined in a stepwise manner. In contrast
after adding 0.1 vt% of the β-CD inclusion complex
the CO
2
absorption capacity increased by 131.03%
and the desorption capacity increased by 58.49%.
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