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1.华北电力大学 环境科学与工程学院,北京 102206
2.广东华润碳能科技有限公司,广东 深圳 518000
李柯菲(2001—),硕士研究生,研究方向为二氧化碳催化解吸,E-mail:13932231925@163.com。
汪黎东(1978—),博士,教授,研究方向为烟气脱硫/脱硝和二氧化碳捕集,E-mail:wld@ncepu.edu.cn。
收稿:2026-01-26,
修回:2026-03-12,
网络首发:2026-07-28,
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李柯菲,代雅雯,景强等.钴镍双金属催化剂的制备及其对富乙醇胺溶液CO2解吸再生性能的影响[J].低碳化学与化工,DOI:10.12434/j.issn.2097-2547.20260041.
LI Kefei,DAI Yawen,JING Qiang,et al.Preparation of Co-Ni bimetallic catalyst and its effect on CO2 desorption regeneration performance of CO2-rich MEA solution[J].Low-Carbon Chemistry and Chemical Engineering,DOI:10.12434/j.issn.2097-2547.20260041.
李柯菲,代雅雯,景强等.钴镍双金属催化剂的制备及其对富乙醇胺溶液CO2解吸再生性能的影响[J].低碳化学与化工,DOI:10.12434/j.issn.2097-2547.20260041. DOI:
LI Kefei,DAI Yawen,JING Qiang,et al.Preparation of Co-Ni bimetallic catalyst and its effect on CO2 desorption regeneration performance of CO2-rich MEA solution[J].Low-Carbon Chemistry and Chemical Engineering,DOI:10.12434/j.issn.2097-2547.20260041. DOI:
醇胺富液在再生阶段普遍存在热负荷高和CO
2
解吸速率低等问题。为解决这一系列问题,采用级联合成法制备了一种钴
镍双金属催化剂(NiCo-NC)。采用SEM、TEM和XRD等表征了NiCo-NC的结构,并以钴单金属催化剂(Co-NC)和镍单金属催化剂(Ni-NC)为对比,研究了其在富乙醇胺溶液(MEA富液)CO
2
解吸过程中的催化性能。结果表明,在91.2 ℃下,NiCo-NC作用下MEA富液的CO
2
最高解吸速率和CO
2
解吸量分别为8.3 mmol/min和136.1 mmol,优于Co-NC(7.4 mmol/min和124.3 mmol)和Ni-NC(7.3 mmol/min和107.8 mmol)。同时,NiCo-NC作用下相对解吸能耗较低(34.6%)。此外,NiCo-NC对醇胺溶液的催化解吸有一定适应性,并表现出良好的稳定性。
The regeneration stage of amine solutions commonly suffers from high thermal energy demand and slow CO
2
desorption rate. To overcome these problems
a Co-Ni bimetallic catalyst (NiCo-NC) was prepared via cascade synthesis method. The structure of NiCo-NC was characterized by SEM
TEM and XRD
and its catalytic performance in CO
2
desorption process from a rich monoethanolamine solution (MEA) was investigated
with the Co monometallic catalyst (Co-NC) and Ni monometallic catalyst (Ni-NC) as comparison groups. The results indicated that at 91.2 ℃
MEA-rich solution achieves the maximum CO
2
desorption rate of 8.3 mmol/min and the CO
2
desorption amount of 136.1 mmol with NiCo-NC
outperforming Co-NC (7.4 mmol/min and 124.3 mmol) and Ni-NC (7.3 mmol/min and 107.8 mmol). Meanwhile
the relative desorption energy consumption with NiCo-NC is low (34.6%). In addition
NiCo-NC exhibits a certain adaptability to the catalytic desorption of alcohol amine solutions and demonstrates good stability.
TAVAKOLI A , RAHIMI K , SAGHANDALI F , et al . Nanofluid preparati on, stability and performance for CO 2 absorption and desorption enhancement: A review [J ] . Journal of Environmental Management , 2022 , 313 : 114955 .
LIN Q Y , ZHANG X , WANG T , et al . Technical perspective of carbon capture, utilization, and storage [J ] . Engineering , 2022 , 14 : 27 - 32 .
GAO H X , HUANG Y F , ZHANG X W , et al . Catalytic performance and mechanism of SO <math id="M26"><msubsup><mrow/><mrow><mn mathvariant="normal">4</mn></mrow><mrow><mn mathvariant="normal">2</mn><mo>-</mo></mrow></msubsup></math> https://html.publish.founderss.cn/rc-pub/api/common/picture?pictureId=114058672&type= https://html.publish.founderss.cn/rc-pub/api/common/picture?pictureId=114058645&type= 2.37066650 3.64066648 /ZrO 2 /SBA-15 catalyst for CO 2 desorption in CO 2 -loaded monoethanolamine solution [J ] . Applied Energy , 2020 , 259 : 114179 .
WASEEM M , AL-MARZOUQI M , GHASEM N , et al . A review of catalytically enhanced CO 2 -rich amine solutions regeneration [J ] . Journal of Environmental Chemical Engineering , 2023 , 11 ( 4 ): 110188 .
LI M Y , XING L , XU Z F , et al . Embedded Mo/Mn atomic regulation for durable acidity reinforced catalyst toward energy-efficient amine regeneration [J ] . Environmental Science & Technology , 2023 , 57 ( 41 ): 15465 - 15474 .
YANG Z Y , SHEN H Y , YANG H , et al . A review of CO 2 catalytic regeneration research based on MEA solution [J ] . Frontiers in Energy Research , 2023 , 11 : 1257218 .
刘竞文 , 孙乐乐 , 刘健 , 等 . 有机胺CO 2 吸收液催化解吸研究进展 [J ] . 低碳化学与化工 , 2025 , 50 ( 1 ): 120 - 131 .
LIU J W , SUN L L , LIU J , et al . Research progress on catalytic desorption of organic amine CO 2 absorption liquids [J ] . Low-Carbon Chemistry and Chemical Engineering , 2025 , 50 ( 1 ): 120 - 131 .
BHATTI U H , KAZMI W W , MIN G H , et al . Facilely synthesized M-mont morillonite (M = Cr, Fe, and Co) as efficient catalysts for enhancing CO 2 desorption from amine solution [J ] . Industrial & Engineering Chemistry Research , 2021 , 60 ( 36 ): 13318 - 13325 .
ZHOU Z G , ZHENG J J , SHAO L Y , et al . Ni/Fe-loaded mesoporous KIT-6 enhanced proton transfer for efficient CO 2 desorption [J ] . Chemical Engineering Journal , 2025 , 522 : 167863 .
WASEEM M , AL-MARZOUQI M , GHASEM N . Enhancing regeneration energy efficiency of CO 2 -rich amine solution with a novel tri-composite catalyst [J ] . Journal of CO 2 Utilization , 2024 , 82 : 102764 .
LI Y C , CHEN Z , ZHAN G X , et al . Inducing efficient proton transfer through Fe/Ni@COF to promote amine-based solvent regeneration for achieving low-cost capture of CO 2 from industrial flue gas [J ] . Separation and Purification Technology , 2022 , 298 : 121676 .
XING L , LI M , LI M Y , et al . MOF-derived robust and synergetic acid sites inducing C—N bond disruption for energy-efficient CO 2 desorption [J ] . Environmental Science & Technology , 2022 , 56 ( 24 ): 17936 - 17945 .
AN S L , XU T , XING L , et al . Recent progress and prospects in solid acid-catalyzed CO 2 desorption from amine-rich liquid [J ] . Gas Science and Engineering , 2023 , 120 : 205152 .
YANG L Z , LIU Q L , HAN R , et al . Confinement and synergy effect of bimetallic Pt-Mn nanoparticles encapsulated in ZSM-5 zeolite with superior performance for acetone catalytic oxidation [J ] . Applied Catalysis B: Environmental , 2022 , 309 : 121224 .
GENG Z B , YANG Y , WANG Y X , et al . Catalytic regeneration of amine-based absorbents for CO 2 capture: The effect of acidic sites and accessibility [J ] . Separation and Purification Technology , 2023 , 327 : 124889 .
HUANG Y F , ZHANG X W , LUO X , et al . Catalytic performance and mechanism of meso-microporous material β ‑SBA-15-supported FeZr catalysts for CO 2 desorption in CO 2 ‑loaded aqueous amine solution [J ] . Industrial & Engineering Chemistry Research , 2021 , 60 ( 6 ): 2698 - 2709 .
邱 微 , 宁一睿 , 赵 澍 , 等 . 双金属负载 γ -Al 2 O 3 固体酸催化CO 2 有机胺富液解吸性能 [J ] . 低碳化学与化工 , 2025 , 50 ( 7 ): 99 - 108 .
QIU W , NING Y R , ZHAO S , et al . Catalytic performances of bimetal-loaded γ -Al 2 O 3 solid acids for CO 2 desorption from rich amine solution [J ] . Low-Carbon Chemistry and Chemical Engineering , 2025 , 50 ( 7 ): 99 - 108 .
LI Y R , DING T Q , XU X B , et al . Synergistic effect of pore generation and nitrogen doping on the enhanced CO 2 capture and selectivity of carbon nanof ibers [J ] . Journal of Environmental Chemical Engineering , 2024 , 12 ( 4 ): 113197 .
LI X , XING L , CHEN Z , et al . Durable and active Fe-N-C assisted by Fe nanoparticle and graphitic layers for efficient carbamate decomposition during amine-based carbon capture [J ] . Advanced Functional Materials , 2024 , 35 ( 12 ): 2414293 .
LI X , XING L , ZHANG C Y , et al . High-graphitization carbon layers coated with Fe-N-C sites for efficient and robust catalytic CO 2 decomposition of amine-solvent [J ] . Separation and Purification Technology , 2025 , 362 : 131785 .
FANG C , ZHOU J , ZHANG L L , et al . Synergy of dual-atom catalysts deviated from the scaling relationship for oxygen evolution reaction [J ] . Nature Communications , 2023 , 14 ( 1 ): 4449 .
TAN Z , ZHANG X W , ZHANG S S , et al . Enhancing CO 2 desorption rate in rich MEA solutions by metal-modified attapulgite catalyst [J ] . Separation and Purification Technology , 2024 , 330 : 125513 .
ZHONG X L , KONG W X , YANG K X , et al . Synergy effect of acid radical anchors and active sites protection in Co-based spinel catalyst for efficient amine solution regeneration during CO 2 capture [J ] . Advanced Functional Materials , 2025 , 35 ( 20 ): 2422336 .
ZHAO S , LIU M J , QU Z H , et al . Cascade synthesis of Fe-N 2 -Fe dual-atom catalysts for superior oxygen catalysis [J ] . Angewandte Chemie-International Edition , 2024 , 63 ( 40 ): 202408914 .
LANDERS J , GOR G Y , NEIMARK A V . Density functional theory methods for characterization of porous materials [J ] . Colloids and Surfaces A: Physicochemical and Engineering Aspects , 2023 , 437 : 3 - 32 .
KIM D , ZUSSBLATT N P , CHUNG H T , et al . Highly graphitic mesoporous Fe, N-doped carbon materials for oxygen reduction electrochemical catalysts [J ] . ACS Applied Materials & Interfaces , 2018 , 10 ( 30 ): 25337 - 25349 .
徐钟韵 , 严丽霞 , 秦羽 , 等 . 非溶剂致相转换法诱导制备分级多孔碳材料用于提升电化学储能性质 [J ] . 储能科学与技术 , 2025 , 14 ( 11 ): 4112 - 4122 .
XU Z Y , YAN L X , QIN Y , et al . Hierarchical porous carbon via non-solvent phase inversion for enhancing electrochemical energy storage [J ] . Energy Storage Science and Technology , 2025 , 14 ( 11 ): 4112 - 4122 .
FUJIMOTO Y . Formation, structure, electronic, and transport properties of nitrogen defects in graphene and carbon nanotubes [J ] . Micromachines , 2024 , 15 ( 9 ): 1172 .
CHEN Y , RONG J , WU J , et al . MOF-derived S, N co-doped porous carbon matrix with single Fe atoms and CoS x nanoparticles dual-sites for enhanced oxygen reduction [J ] . Chemical Engineering Journal , 2024 , 502 : 158080 .
GENG Z B , YANG Y , XU W Q , et al . Regulating WO x coordination environment improves proton transfer for catalytic amine regeneration in CO 2 capture [J ] . Green Energy & Environment , 2025 , 10 ( 5 ): 1085 - 1095 .
吴越 . 应用催化基础 [M ] . 北京 : 化学工业出版社 , 2008 .
WU Y . Basis of applied catalysis [M ] . Beijing : Chemical Industry Press , 2008 .
CHEN Z P , LI C , FANG M X , et al . Research of novel polyamine-based biphasic absorbents for CO 2 capture using alkanolamine to regulate the viscosity and mechanism analysis [J ] . Separation and Purification Technology , 2024 , 333 : 125869 .
喻方辉 . 固体酸型催化剂降低单乙醇有机胺溶液解吸能耗的实验研究 [D ] . 长沙 : 湖南大学 , 2016 .
YU F H . Experimental study on the solvent regeneration of a CO 2 -loaded MEA solution using single and hybrid solid acid catalysis [D ] . Changsha : Hunan University , 2016 .
WANG Z T , WANG Y G , MU R , et al . Probing equilibrium of molecular and deprotonated water on TiO 2 (110) [J ] . Proceedings of The National Academy of Sciences of The United States of America , 2017 , 114 ( 8 ): 1801 - 1805 .
LIANG W L , DAN Z X , GONG X Y , et al . Activating Ni via heterostructure-induced electron deficiency and spatial intermediate coupling for enhanced alkaline HER/HOR [J ] . Applied Catalysis B: Environment and Energy , 2026 , 383 : 126069 .
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