Journal of Petrochemical Universities ›› 2026, Vol. 39 ›› Issue (3): 11-22.DOI: 10.12422/j.issn.1006-396X.2026.03.002
• Alternative Fuels and New Materials • Previous Articles Next Articles
Liuqing CHEN1,2, Linhai DUAN2(
), Xinping OUYANG1(
)
Received:2025-07-05
Revised:2025-11-25
Published:2026-06-25
Online:2026-06-10
Contact:
Linhai DUAN, Xinping OUYANG
通讯作者:
段林海,欧阳新平
作者简介:陈柳青(2001-),女,硕士研究生,从事金属有机框架材料的设计及其低温甲烷吸附性能方面的研究;E-mail:
基金资助:CLC Number:
Liuqing CHEN, Linhai DUAN, Xinping OUYANG. Research Progress on Low-Temperature Adsorption of Methane by MOFs Based on LNG-ANG Coupling[J]. Journal of Petrochemical Universities, 2026, 39(3): 11-22.
陈柳青, 段林海, 欧阳新平. 基于LNG-ANG耦合的MOFs低温吸附CH4研究进展[J]. 石油化工高等学校学报, 2026, 39(3): 11-22.
Fig.10 N2 adsorption-desorption isotherms, pore size distribution curves and CH4 adsorption isotherms at different temperatures of MIL-101(Cr),Maxsorb-Ⅲ AC and MAX-MIL[57]
| [1] | 郑坚钦,王博弘,张浩然,等.天然气需求量预测研究进展[J].石油化工高等学校学报,2018,31(4):1-6. |
| ZHENG J Q,WANG B H,ZHANG H R,et al.Advances in study of natural gas demand prediction[J].Journal of Petrochemical Universities,2018,31(4):1-6. | |
| [2] | 马蕊英,孙兆松,黄新露,等.天然气在Cu-BTC成型体上的吸附存储及应用前景[J].当代化工,2018,47(5):919-921. |
| MA R Y,SUN Z S,HUANG X L,et al.Adsorption storage of natural gas in Cu-BTC shaped materials and its application prospects[J].Contemporary Chemical Industry,2018,47(5):919-921. | |
| [3] | WANG C H,SUN D M,SHEN Q,et al.A re-liquefaction process of LNG boil-off gas using an improved Kapitsa cycle:Eliminating the BOG compressor[J].Energy,2024,304:131979. |
| [4] | AL-SOBHI S A,ALNOUSS A,SHAMLOOH M,et al.Sustainable boil-off gas utilization in liquefied natural gas production:Economic and environmental benefits[J].Journal of Cleaner Production,2021,296:126563. |
| [5] | TANG C L,HU F,ZHOU X G,et al.Optimization methods for flexibility and stability related to the operation of LNG receiving terminals[J].Energy,2022,250:123620. |
| [6] | ROSZAK E A,CHOROWSKI M.Exergy analysis of combined simultaneous liquid natural gas vaporization and adsorbed natural gas cooling[J].Fuel,2013,111:755-762. |
| [7] | KAYAL S,SUN B C,CHAKRABORTY A.Study of metal-organic framework MIL-101(Cr) for natural gas (methane) storage and compare with other MOFs (metal-organic frameworks)[J].Energy,2015,91:772-781. |
| [8] | KIM S Y,KANG J H,KIM S I,et al.Extraordinarily large and stable methane delivery of MIL-53(Al) under LNG-ANG conditions[J].Chemical Engineering Journal,2019,365:242-248. |
| [9] | ROSZAK E A,CHOROWSKI M.Exergy of LNG regasification–possible utilization method.Case study of LNG-ANG coupling[J].AIP Conference Proceedings,2014,1573(1):1379-1386. |
| [10] | TALU O,ZHANG S Y,HAYHURST D T.Effect of cations on methane adsorption by NaY,MgY,CaY,SrY,and BaY zeolites[J].The Journal of Physical Chemistry,1993,97(49):12894-12898. |
| [11] | CASCO M E,MARTÍNEZ-ESCANDELL M,GADEA-RAMOS E,et al.High-pressure methane storage in porous materials:Are carbon materials in the pole position?[J].Chemistry of Materials,2015,27(3):959-964. |
| [12] | KOU J H,PAN Y H,LIU H,et al.Methane adsorption effect of cyclodextrin-based metal-organic frameworks and ultra-fine water mist composite system in closed container[J].Chemical Engineering Journal,2024,496:153879. |
| [13] | 韩素英,韩新华,曹运祥,等.金属有机框架材料HKUST-1吸附分离CH4/N2性能研究[J].石油炼制与化工,2018,49(5):43-48. |
| HAN S Y,HAN X H,CAO Y X,et al.Adsorption separation of CH4/N2 over metal organic frame material HKUST-1[J].Petroleum Processing and Petrochemicals,2018,49(5):43-48. | |
| [14] | ZHU Q L,XU Q.Metal-organic framework composites[J].Chemical Society Reviews,2014,43(16):5468-5512. |
| [15] | MENG J S,LIU X,NIU C J,et al.Advances in metal-organic framework coatings:Versatile synthesis and broad applications[J].Chemical Society Reviews,2020,49(10):3142-3186. |
| [16] | 葛维翰,黄龙,张晨.金属有机骨架材料对苯乙烯废气的吸附[J].化工环保,2023,43(5):638-643. |
| GE W H,HUANG L,ZHANG C.Adsorption of styrene waste gas on metal-organic framework materials[J].Environmental Protection of Chemical Industry,2023,43(5):638-643. | |
| [17] | DONG A R,CHEN D D,LI Q P,et al.Metal-organic frameworks for greenhouse gas applications[J].Small,2023,19(10):2201550. |
| [18] | 蔡铖智,李丽凤,邓小梅,等.基于机器学习和高通量计算筛选金属有机框架的甲烷/乙烷/丙烷分离性能[J].化学学报,2020,78(5):427-436. |
| CAI C Z,LI L F,DENG X M,et al.Machine learning and high-throughput computational screening of metal-organic framework for separation of methane/ethane/propane[J].Acta Chimica Sinica,2020,78(5):427-436. | |
| [19] | 仙梦丹,高学婷,李刚森,等.Cu基MOFs在低浓度煤层气CH4/N2吸附分离中的分子模拟研究[J].低碳化学与化工,2025,50(7):83-90. |
| XIAN M D,GAO X T,LI G S,et al.Molecular simulation study of Cu-based MOFs for CH4/N2 adsorption separation in low-concentration coalbed methane[J].Low-Carbon Chemistry and Chemical Engineering,2025,50(7):83-90. | |
| [20] | KIM S Y,HAN S,LEE S,et al.Discovery of high-performing metal–organic frameworks for on-board methane storage and delivery via LNG–ANG coupling:High-throughput screening,machine learning,and experimental validation[J].Adv Sci (Weinh),2022,9(21):2201559. |
| [21] | LI B,WEN H M,ZHOU W,et al.Porous metal-organic frameworks:Promising materials for methane storage[J].Chem,2016,1(4):557-580. |
| [22] | SENKOVSKA I,BON V,MOSBERGER A,et al.Adsorption and separation by flexible MOFs[J].Advanced Materials,2025,37(52):2414724. |
| [23] | TANAKA H,MIYAHARA M T.Free energy calculations for adsorption-induced deformation of flexible metal–organic frameworks[J].Current Opinion in Chemical Engineering,2019,24:19-25. |
| [24] | MASON J A,OKTAWIEC J,TAYLOR M K,et al.Methane storage in flexible metal–organic frameworks with intrinsic thermal management[J].Nature,2015,527(7578):357-361. |
| [25] | HIRAIDE S,SAKANAKA Y T,KAJIRO H,et al.High-throughput gas separation by flexible metal–organic frameworks with fast gating and thermal management capabilities[J].Nature Communications,2020,11(1):3867. |
| [26] | WITMAN M,WRIGHT B,SMIT B.Simulating enhanced methane deliverable capacity of guest responsive pores in intrinsically flexible MOFs[J].The Journal of Physical Chemistry Letters,2019,10(19):5929-5934. |
| [27] | 费小龙,陈鸿蔚,李立博.金属有机骨架材料成型及多次再生对其吸附分离性能的影响[J].石油学报(石油加工),2025, 41(3):689-698. |
| FEI X L,CHEN H W,LI L B.Effect of shaping and regenerationof metal-organic framework on its adsorptive separation performance[J].Acta Petrolei Sinica (PetroleumProcessing Section),2025,41(3):689-698. | |
| [28] | ZHOU J,MA Y N,ZHANG Y F,et al.High-connected ternary metal–organic framework platform:Synthesis,structure,and methane storage capacity[J].Journal of the American Chemical Society,2025,147(25):21811-21817. |
| [29] | YANG H J,PENG F,HONG A N,et al.Ultrastable high-connected chromium metal-organic frameworks[J].Journal of the American Chemical Society,2021,143(36):14470-14474. |
| [30] | WANG K,CAO H H,ZHONG Y L,et al.Porous MOFs with geometric mismatch between trimers and octatopic pyrene-based ligands for low-temperature methane storage[J].Chemical Communications,2024,60(100):15055-15058. |
| [31] | CHEN Z J,WESELIŃSKI Ł J,ADIL K,et al.Applying the power of reticular chemistry to finding the missing alb-MOF platform based on the (6,12) -coordinated edge-transitive net[J].Journal of the American Chemical Society,2017,139(8):3265-3274. |
| [32] | GUILLERM V,EDDAOUDI M.The importance of highly connected building units in reticular chemistry:Thoughtful design of metal-organic frameworks[J].Accounts of Chemical Research,2021,54(17):3298-3312. |
| [33] | GUILLERM V,KIM D,EUBANK J F,et al.A supermolecular building approach for the design and construction of metal-organic frameworks[J].Chemical Society Reviews,2014,43(16):6141-6172. |
| [34] | STOECK U,KRAUSE S,BON V,et al.A highly porous metal-organic framework,constructed from a cuboctahedral super-molecular building block,with exceptionally high methane uptake[J].Chemical Communications,2012,48(88):10841-10843. |
| [35] | STOECK U,SENKOVSKA I,BON V,et al.Assembly of metal-organic polyhedra into highly porous frameworks for ethene delivery[J].Chemical Communications,2015,51(6):1046-1049. |
| [36] | WANG D M,ZHANG Y X,GAO J L,et al.A polyhedron-based heterometallic MOF constructed by HSAB theory and SBB strategy:Synthesis,structure,and adsorption properties[J].Crystal Growth & Design,2019,19(8):4571-4578. |
| [37] | GRANCHA T,CARNÉ-SÁNCHEZ A,ZAREKARIZI F,et al.Synthesis of polycarboxylate Rhodium(Ⅱ) metal–organic polyhedra(MOPs) and their use as building blocks for highly connected metal-organic frameworks(MOFs)[J].Angewandte Chemie International Edition,2021,60(11):5729-5733. |
| [38] | SHI L,ZHONG Y L,CAO H H,et al.A hetero-supermolecular-building-block strategy for the assembly of porous (3,12,24)-connected uru metal–organic frameworks[J].Nature Synthesis,2024,3(12):1560-1566. |
| [39] | FENG L,WANG K Y,LÜ X L,et al.Hierarchically porous metal-organic frameworks:Synthetic strategies and applications[J].National Science Review,2019,7(11):1743-1758. |
| [40] | LI K,YANG J,GU J L.Hierarchically porous MOFs synthesized by soft-template strategies[J].Accounts of Chemical Research,2022,55(16):2235-2247. |
| [41] | 杨萍,李有喜,蔡武锋,等.双金属MOF-74(MgxNi1- x) 的制备及其对CO2/N2的吸附分离性能研究[J].辽宁石油化工大学学报,2022,42(6):1-7. |
| YANG P,LI Y X,CAI W F,et al.Preparation of bimetallic MOF-74(MgxNi1- x) and its adsorption and separation performance for CO2/N2[J].Journal of Liaoning Petrochemical University,2022,42(6):1-7. | |
| [42] | FUJIWARA A,WANG J W,HIRAIDE S,et al.Fast gas-adsorption kinetics in supraparticle-based MOF packings with hierarchical porosity[J].Advanced Materials,2023,35(44):e2305980. |
| [43] | DOAN H V,AMER HAMZAH H,KARIKKETHU PRABHAKARAN P,et al.Hierarchical metal–organic frameworks with macroporosity:Synthesis,achievements,and challenges[J].Nano-Micro Letters,2019,11(1):54. |
| [44] | QIU L G,XU T,LI Z Q,et al.Hierarchically micro-and mesoporous metal-organic frameworks with tunable porosity[J].Angewandte Chemie International Edition,2008,47(49):9487-9491. |
| [45] | MISSAOUI N,GASSOUMI B,NASR S,et al.Synergistic combination of experimental and theoretical studies on chlorinated volatile organic compound adsorption in highly microporous n-MOF-5 and amino-substituted n-MOF-5-NH2 nanocrystals synthesized via PEG soft-templating[J].Journal of Molecular Liquids,2025,418:126716. |
| [46] | ZHANG Z,LÜ K,LI M N,et al.Rationally tailoring porous structure of ZIF-8 for boosting adsorption of tetracycline hydrochloride by surfactant-induced engineering[J].Separation and Purification Technology,2025,372:133408. |
| [47] | LI K,ZHAO Y C,YANG J,et al.Nanoemulsion-directed growth of MOFs with versatile architectures for the heterogeneous regeneration of coenzymes[J].Nature Communications,2022,13(1):1879. |
| [48] | ZHONG Y L,XIONG Z Y,LI Y,et al.Stable heterometallic metal-organic frameworks and pellet composites for low-temperature natural gas storage[J].Chemical Engineering Journal,2024,500:157536. |
| [49] | JIANG W Q,QI X J,HUANG P N,et al.Highly efficient arsenate adsorption removal from wastewater based on activated carbon-iron based metal organic framework in situ grown composites[J].Materials Science and Engineering:B,2025,313:117927. |
| [50] | ZHANG G H,MO S C,LIAO X W,et al.Novel activated carbon modified magnesium-MOF-74 composites with enhanced CO2 adsorption separation efficiency[J].Colloids and Surfaces A:Physicochemical and Engineering Aspects,2025,710:136223. |
| [51] | 乔瑶雨,张学辉,赵晓竹,等.石墨烯/金属-有机框架复合材料制备及其应用[J].化学进展,2022,34(5):1181-1190. |
| QIAO Y Y,ZHANG X H,ZHAO X Z,et al.Preparation and application of graphene/metal-organic frameworks composites[J].Progress in Chemistry,2022,34(5):1181-1190. | |
| [52] | KONNI M,DADHICH A S,MUKKAMALA S B.Hydrogen uptake performance of nanocomposites derived from metal-organic framework (Cu-BTC) and metal decorated multi-walled carbon nanotubes (Ni@f-MWCNTs or Pd@f-MWCNTs)[J].Surfaces and Interfaces,2020,21:100672. |
| [53] | 乔俊宇,李秀涛.基于MOFs的碳纳米管复合材料的制备和应用进展[J].材料工程,2021,49(9):27-40. |
| QIAO J Y,LI X T.Progress in preparation and application of carbon nanotube composites based on MOFs[J].Journal of Materials Engineering,2021,49(9):27-40. | |
| [54] | SINGH N,DALAKOTI S,SHARMA A,et al.Shaping of MIL-53-Al and MIL-101 MOF for CO2/CH4,CO2/N2 and CH4/N2 separation[J].Separation and Purification Technology,2024,341:126820. |
| [55] | WEI X Q,ZHANG X Y,JIN L,et al.Waste biomass-derived biochar in adsorption-photocatalytic conversion of CO2 for sustainable energy and environment:Evaluation,mechanism,and life cycle assessment[J].Applied Catalysis B:Environment and Energy,2024,351:123957. |
| [56] | CHEN Y W,LÜ D F,WU J L,et al.A new MOF-505@GO composite with high selectivity for CO2/CH4 and CO2/N2 separation[J].Chemical Engineering Journal,2017,308:1065-1072. |
| [57] | KAYAL S,CHAKRABORTY A.Activated carbon (type maxsorb-Ⅲ) and MIL-101(Cr) metal organic framework based composite adsorbent for higher CH4 storage and CO2 capture[J].Chemical Engineering Journal,2018,334:780-788. |
| [58] | ESFANDIARI K,MAHDAVI A R,GHOREYSHI A A,et al.Optimizing parameters affecting synthetize of CuBTC using response surface methodology and development of AC@CuBTC composite for enhanced hydrogen uptake[J].International Journal of Hydrogen Energy,2018,43(13):6654-6665. |
| [59] | LUO L,ZHOU Y L,YAN W,et al.In-situ one-step synthesis of activated carbon@MIL-101 (Cr) composites for hydrogen storage[J].International Journal of Hydrogen Energy,2022,47(93):39563-39571. |
| [60] | ZHANG Y J,ISLAM M A,WEI Z,et al.Enhanced CO2 capture onto in situ MOF growth on aminyl-incorporated activated carbon[J].International Communications in Heat and Mass Transfer,2025,165(Part A):109010. |
| [61] | ZHANG Y X,ZHANG M,CHEN S J,et al.Synthesis of MIL-101(Cr)/graphite oxide composite and enhanced the capacity of methane[J].Journal of Natural Gas Science and Engineering,2022,103:104647. |
| [62] | AL-NADDAF Q,AL-MANSOUR M,THAKKAR H,et al.MOF-GO hybrid nanocomposite adsorbents for methane storage[J].Industrial & Engineering Chemistry Research,2018,57(51):17470-17479. |
| [63] | DOMÁN A,MADARÁSZ J,SÁFRÁN G,et al.Copper benzene-1,3,5-tricarboxylate (HKUST-1)–graphene oxide pellets for methane adsorption[J].Microporous and Mesoporous Materials,2021,316:110948. |
| [64] | SZCZĘŚNIAK B,CHOMA J,JARONIEC M.Development of activated graphene-MOF composites for H2 and CH4 adsorption[J].Adsorption,2019,25(3):521-528. |
| [65] | AL-NADDAF Q,ROWNAGHI A A,REZAEI F.Multicomponent adsorptive separation of CO2,CO,CH4,N2,and H2 over core-shell zeolite-5A@MOF-74 composite adsorbents[J].Chemical Engineering Journal,2020,384:123251. |
| [66] | JIANG Z L,LEI Y Q D,ZHANG J,et al.Enhanced adsorption and regeneration performances for methyl mercaptan capture by a metal-organic framework incorporated in a mesoporous silica[J].Separation and Purification Technology,2025,357(Part A):130041. |
| [67] | DALAKOTI S,SINGH N,SHARMA A,et al.Cu-trimesate and mesoporous silica composite as adsorbent showing enhanced CO2/CH4 and CO2/N2 selectivity for biogas and flue gas separation[J].Microporous and Mesoporous Materials,2025,381:113354. |
| [68] | DOU Y B,GRANDE C,KAISER A,et al.Highly structured metal-organic framework nanofibers for methane storage[J].Science China Materials,2021,64(7):1742-1750. |
| [69] | QU Z G,WANG H,ZHANG W.Highly efficient adsorbent design using a Cu-BTC/CuO/carbon fiber paper composite for high CH4/N2 selectivity[J].RSC Advances,2017,7(23):14206-14218. |
| [70] | WU Y Q,YUAN D H,HE D W,et al.Decorated traditional zeolites with subunits of metal-organic frameworks for CH4/N2 separation[J].Angewandte Chemie International Edition,2019,58(30):10241-10244. |
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