无机盐工业
主管:中海油天津化工研究设计院有限公司
主办:中海油天津化工研究设计院有限公司
   中海油炼油化工科学研究院(北京)有限公司
   中国化工学会无机酸碱盐专业委员会
ISSN 1006-4990 CN 12-1069/TQ
综述与专论

协同效应催化甲烷二氧化碳重整研究进展

  • 胡明亮 ,
  • 周微 ,
  • 李滨 ,
  • 赖晓玲
展开
  • 中海油天津化工研究设计院有限公司,天津 300131
胡明亮(1996— ),男,硕士,主要研究方向为功能材料制备及其催化应用;E-mail:huml0311@163.com

收稿日期: 2023-04-21

  网络出版日期: 2024-01-18

Research progress of synergistic effect catalytic reforming of methane and carbon dioxide

  • HU Mingliang ,
  • ZHOU Wei ,
  • LI Bin ,
  • LAI Xiaoling
Expand
  • CenerTech Tianjin Chemical Research and Design Institute Co. Ltd. Tianjin 300131,China

Received date: 2023-04-21

  Online published: 2024-01-18

摘要

利用化学惰性的甲烷和二氧化碳经重整反应制备合成气是一种十分有前景的策略,能够实现两种温室气体化学转化并制备高附加值化学品,具有重要的科学、环保意义和工业应用价值。然而该反应受限于反应能耗高、催化剂易烧结、积炭失活等问题,因此,开发高催化活性、高稳定性及抗积炭性能强的催化剂是实现该反应工业化应用的关键。从催化剂的基本组成出发,综述了目前国内外甲烷二氧化碳重整催化剂活性中心和载体的设计思路;重点介绍了协同效应在提升催化活性及稳定性等方面所起的关键作用;分析了通过合金化或空间结构化策略来实现协同效应的高效催化过程,并提出未来甲烷二氧化碳重整催化剂的设计和发展方向。

本文引用格式

胡明亮 , 周微 , 李滨 , 赖晓玲 . 协同效应催化甲烷二氧化碳重整研究进展[J]. 无机盐工业, 2024 , 56(1) : 23 -32 . DOI: 10.19964/j.issn.1006-4990.2023-0225

Abstract

The preparation of syngas from chemically inert methane and carbon dioxide by reforming reactions is a very promising strategy.It can realize the chemical conversion of two greenhouse gases and obtain high value-added chemicals,which has important scientific and environmental significance and industrial application value.However,this reaction is limited by high energy consumption,easy sintering and carbon deactivation of the catalyst.Therefore,the design of catalysts with high catalytic activity,excellent stability and strong anti-coking is the key to realize the industrial application of this reaction.Based on the basic composition of catalysts,the design ideas of active centers and carriers for reforming catalysts of methane and carbon dioxide at home and abroad were reviewed,and the key role of synergistic effect in improving catalytic activity and stability was emphatically introduced.The efficient catalytic process of realizing synergistic effect through alloying or spatial structure strategy was analyzed,and the design and development direction for reforming catalyst of methane and carbon dioxide in the future was put forward.

参考文献

1 FRANCKE R, SCHILLE B, ROEMELT M.Homogeneously catalyzed electroreduction of carbon dioxide:methods,mechanisms,and catalysts[J].Chemical Reviews2018118(9):4631-4701.
2 LU Yao, KANG Li, GUO Dan,et al.Double-site doping of a V promoter on Nix -V-MgAl catalysts for the DRM reaction:Simultaneous effect on CH4 and CO2 activation[J].ACS Catalysis202111(14):8749-8765.
3 JIANG Xiao, NIE Xiaowa, GUO Xinwen,et al.Recent advances in carbon dioxide hydrogenation to methanol via heterogeneous catalysis[J].Chemical Reviews2020120(15):7984-8034.
4 FORS S A, MALAPIT C A.Homogeneous catalysis for the conversion of CO2,CO,CH3OH,and CH4 to C2+ chemicals via C—C bond formation[J].ACS Catalysis202313(7):4231-4249.
5 FLORIAN J, COLE J M.Analyzing structure-activity variations for Mn-carbonyl complexes in the reduction of CO2 to CO[J].Inorganic Chemistry202362(1):318-335.
6 ADAMSON T T, KELLEY S P, BERNSKOETTER W H.Iron-mediated C—C bond formation via reductive coupling with carbon dioxide[J].Organometallics202039(19):3562-3571.
7 VICHOU E, LI Yun, GOMEZ-MINGOT M,et al.Imidazolium- and pyrrolidinium-based ionic liquids as cocatalysts for CO2 electroreduction in model molecular electrocatalysis[J].The Journal of Physical Chemistry C2020124(43):23764-23772.
8 HU Mingliang, LIU Jiahao, SONG Shaojia,et al.Ultra-thin two-dimensional trimetallic metal-organic framework for photocatalytic reduction of CO2 [J].ACS Catalysis202212(5):3238-3248.
9 WANG Weiwei, SONG Shaojia, WANG Ping,et al.Chemical bonding of g-C3N4/UiO-66(Zr/Ce) from Zr and Ce single atoms for efficient photocatalytic reduction of CO2 under visible light[J].ACS Catalysis202313(7):4597-4610.
10 YANG Jinman, YANG Zhengrui, YANG Kefen,et al.Indium-based ternary metal sulfide for photocatalytic CO2 reduction application[J].Chinese Journal of Catalysis202344:67-95.
11 JIANG Yuheng, ZHAO Wenshi, LI Siyang,et al.Elevating photooxidation of methane to formaldehyde via TiO2 crystal phase engineering[J].Journal of the American Chemical Society2022144(35):15977-15987.
12 黄兴,赵博宇,张昊,等.聚集辐照下甲烷水蒸气重整制氢过程参数研究[J].石油与天然气化工202150(4):58-65.
  HUANG Xing, ZHAO Boyu, ZHANG Hao,et al.Parameters research for hydrogen production of methane steam reforming under concentrated radiation[J].Chemical Engineering of Oil & Gas202150(4):58-65.
13 YOON Y, YOU H M, KIM H J,et al.Computational catalyst design for dry reforming of methane:A review[J].Energy & Fuels202236(17):9844-9865.
14 LIN Shiru, TRISTAN J B, WANG Yang,et al.Dry reforming of methane on doped Ni nanoparticles:Feature-assisted optimizations and ranking of doping metals for direct activations of CH4 and CO2 [J].Nano Research202215(10):9670-9682.
15 HUANG Weiqiao, WEI Changgeng, LI Yi,et al.The role of Mo species in Ni-Mo catalysts for dry reforming of methane[J].Physical Chemistry Chemical Physics202224(35):21461-21469.
16 GUHAROY U, REINA T R, LIU Jian,et al.A theoretical overview on the prevention of coking in dry reforming of methane using non-precious transition metal catalysts[J].Journal of CO2 Utilization202153:101728.
17 MANAVI N, LIU Bin.Molecular mechanisms of methane dry reforming on Co3Mo3N catalyst with dual sites[J].Catalysis Science & Technology202111(11):3724-3736.
18 GONZáLEZ-CASTA?O M, LE SACHé E, BERRY C,et al.Nickel phosphide catalysts as efficient systems for CO2 upgrading via dry reforming of methane[J].Catalysts202111(4):446.
19 KULANDAIVALU T, MOHAMED A R, ALI K A,et al.Photocatalytic carbon dioxide reforming of methane as an alternative approach for solar fuel production:A review[J].Renewable and Sustainable Energy Reviews2020134:110363.
20 WANG Lei, WANG Fagen.Design strategy,synthesis,and mechanism of Ni catalysts for methane dry reforming reaction:Recent advances and future perspectives[J].Energy & Fuels202236(11):5594-5621.
21 QI Ronghua, AN Lei, GUO Yu,et al. In situ fabrication of ultrasmall Ni nanoparticles from Ni(OH)2 precursors for efficient CO2 reforming of methane[J].Industrial & Engineering Chemistry Research202261(1):198-206.
22 ZHANG Xiaoyu, DENG Jiang, LAN Tianwei,et al.Promoting methane dry reforming over Ni catalysts via modulating surface electronic structures of BN supports by doping carbon[J].ACS Catalysis202212(22):14152-14161.
23 WANG Dingdi, LITTLEWOOD P, MARKS T J,et al.Coking can enhance product yields in the dry reforming of methane[J].ACS Catalysis202212(14):8352-8362.
24 LITTLEWOOD P, WEITZ E, MARKS T J,et al.Kinetic isoconversion loop catalysis:A reactor operation mode to investigate slow catalyst deactivation processes,with Ni/Al2O3 for the dry reforming of methane[J].Industrial & Engineering Chemistry Research201958(7):2481-2491.
25 ZHAO Ling, LUO Yicong, XIAO Junzhe,et al.Stereodivergent synthesis of allenes with αβ-adjacent central chiralities empowered by synergistic Pd/Cu catalysis[J].Angewandte Chemie International Edition202362(9):e202218146.
26 XIAO Zeyu, SUN Panpan, QIAO Zelong,et al.Atomically dispersed Fe-Cu dual-site catalysts synergistically boosting oxygen reduction for hydrogen fuel cells[J].Chemical Engineering Journal2022446:137112.
27 GUO Yalin, HUANG Yike, ZENG Bin,et al.Photo-thermo semi-hydrogenation of acetylene on Pd1/TiO2 single-atom catalyst[J].Nature Communications202213:2648.
28 YI Jundong, GAO Xiaoping, ZHOU Huang,et al.Design of Co-Cu diatomic site catalysts for high-efficiency synergistic CO2 electroreduction at industrial-level current density[J].Angewandte Chemie International Edition202261(47):e202212329.
29 HAN Qinglin, ZHAO Ximeng, LUO Yuhong,et al.Synergistic binary Fe-Co nanocluster supported on defective tungsten oxide as efficient oxygen reduction electrocatalyst in zinc-air battery[J].Advanced Science20229(4):2104237.
30 LI Zhenxing, HU Mingliang, LIU Jiahao,et al.Mesoporous silica stabilized MOF nanoreactor for highly selective semi-hydrogenation of phenylacetylene via synergistic effect of Pd and Ru single site[J].Nano Research202215(3):1983-1992.
31 ZHONG Dichang, GONG Yunnan, ZHANG Chao,et al.Dinuclear metal synergistic catalysis for energy conversion[J].Chemical Society Reviews202352(9):3170-3214.
32 VAKILI R, GHOLAMI R, STERE C E,et al.Plasma-assisted catalytic dry reforming of methane(DRM) over metal-organic frameworks(MOFs)-based catalysts[J].Applied Catalysis B:Environmental2020260:118195.
33 HE Lei, LI Mingrun, LI Wencui,et al.Robust and coke-free Ni catalyst stabilized by 1~2 nm-thick multielement oxide for methane dry reforming[J].ACS Catalysis202111(20):12409-12416.
34 AKRI M, ZHAO Shu, LI Xiaoyu,et al.Atomically dispersed nickel as coke-resistant active sites for methane dry reforming[J].Nature Communications201910:5181.
35 CHEN Shuyue, ZAFFRAN J, YANG Bo.Dry reforming of methane over the cobalt catalyst:Theoretical insights into the reaction kinetics and mechanism for catalyst deactivation[J].Applied Catalysis B:Environmental2020270:118859.
36 JOSé-ALONSO D SAN, ILLáN-GóMEZ M J, ROMáN-MARTíNEZ M C.K and Sr promoted Co alumina supported catalysts for the CO2 reforming of methane[J].Catalysis Today2011176(1):187-190.
37 莫文龙,马凤云,郝世豪,等.介孔Al2O3的制备及其在CO2-CH4重整镍基催化剂中的应用研究[J].天然气化工(C1化学与化工)201439(5):16-21.
  MO Wenlong, MA Fengyun, HAO Shihao,et al.Preparation of ordered mesoporous Al2O3 and its application in Ni-based catalysts for CH4/CO2 reforming[J].Natural Gas Chemical Industry201439(5):16-21.
38 张小平.制备方式对Ni-ZrO2催化剂在甲烷二氧化碳重整中催化性能的影响[J].现代化工202040(1):189-193.
  ZHANG Xiaoping.Influence of preparation methods on catalytic property of Ni-ZrO2 catalyst in CO2 reforming of CH4 [J].Modern Chemical Industry202040(1):189-193.
39 万吉纯,朱孔涛,翁维正,等.氨辅助浸渍法制备抗烧结Ni/SiO2催化剂及其甲烷二氧化碳重整反应的性能[J].厦门大学学报(自然科学版)201958(5):651-660.
  WAN Jichun, ZHU Kongtao, WENG Weizheng,et al.Preparation of sinter-resistant Ni/SiO2 catalysts using ammonia-assisted impregnation method and its performance in CO2 reforming of methane[J].Journal of Xiamen University(Natural Science)201958(5):651-660.
40 LIANG Defang, WANG Yishuang, CHEN Mingqiang,et al.Dry reforming of methane for syngas production over attapulgite-derived MFI zeolite encapsulated bimetallic Ni-Co catalysts[J].Applied Catalysis B:Environmental2023322:122088.
41 DENG Jiang, GAO Min, HASEGAWA J,et al.Unravelling the anomalous coking-resistance over boron nitride supported Ni catalysts for dry reforming of methane[J].CCS Chemistry2022.Doi:10.31635/ccschem.022.202202342.
42 ZHANG Xianhua, PEI Chunlei, CHANG Xin,et al.FeO6 octahedral distortion activates lattice oxygen in perovskite ferrite for methane partial oxidation coupled with CO2 splitting[J].Journal of the American Chemical Society2020142(26):11540-11549.
43 ZHAO Tingting, ZHAO Jiankang, TAO Xuyingnan,et al.Highly active and thermostable submonolayer La(NiCo)OΔ catalyst stabilized by a perovskite LaCrO3 support[J].Communications Chemistry20225:70.
44 FENG Chao, BI Yuxi, CHEN Chong,et al.Urea-H2O2 defect engineering of δ-MnO2 for propane photothermal oxidation:Structure-activity relationship and synergetic mechanism determination[J].Journal of Colloid and Interface Science2023641:48-58.
45 LIU Jingjing, SUN Shengnan, LIU Jiang,et al.Achieving high-efficient photoelectrocatalytic degradation of 4-chlorophenol via functional reformation of titanium-oxo clusters[J].Journal of the American Chemical Society2023145(11):6112-6122.
46 LI Zhenxing, YU Chengcheng, KANG Yikun,et al.Ultra-small hollow ternary alloy nanoparticles for efficient hydrogen evolution reaction[J].National Science Review20218(7):nwaa204.
47 LI Zhenxing, YU Chengcheng, WEN Yangyang,et al.Mesoporous hollow Cu-Ni alloy nanocage from core-shell Cu@Ni nanocube for efficient hydrogen evolution reaction[J].ACS Catalysis20199(6):5084-5095.
48 LI Zhenxing, MA Zhengzheng, WEN Yangyang,et al.Copper nanoflower assembled by sub-2 nm rough nanowires for efficient oxygen reduction reaction:High stability and poison resistance and density functional calculations[J].ACS Applied Materials & Interfaces201810(31):26233-26240.
49 WANG Jiyang, FU Yu, KONG Wenbo,et al.Investigation of atom-level reaction kinetics of carbon-resistant bimetallic NiCo-reforming catalysts:Combining microkinetic modeling and density functional theory[J].ACS Catalysis202212(8):4382-4393.
50 REZAEI R, MORADI G, SHARIFNIA S.Dry reforming of methane over Ni-Cu/Al2O3 catalyst coatings in a microchannel reactor:Modeling and optimization using design of experiments[J].Energy & Fuels201933(7):6689-6706.
51 WANG Lei, LI Dalin, KOIKE M,et al.Catalytic performance and characterization of Ni-Fe catalysts for the steam reforming of tar from biomass pyrolysis to synthesis gas[J].Applied Catalysis A:General2011392(1/2):248-255.
52 HUANG Tao, HUANG Wei, HUANG Jian,et al.Methane reforming reaction with carbon dioxide over SBA-15 supported Ni-Mo bimetallic catalysts[J].Fuel Processing Technology201192(10):1868-1875.
53 LIU Wenming, LI Le, LIN Sixue,et al.Confined Ni-In intermetallic alloy nanocatalyst with excellent coking resistance for methane dry reforming[J].Journal of Energy Chemistry202265:34-47.
54 LI Haocheng, HAO Cong, TIAN Jingqing,et al.Ultra-durable Ni-Ir/MgAl2O4 catalysts for dry reforming of methane enabled by dynamic balance between carbon deposition and elimination[J].Chem Catalysis20222(7):1748-1763.
55 SHOJI S, MOHD NAJIB A S BIN, YU Minwen,et al.Charge partitioning by intertwined metal-oxide nano-architectural networks for the photocatalytic dry reforming of methane[J].Chem Catalysis20222(2):321-329.
56 TANG Yu, WEI Yuechang, WANG Ziyun,et al.Synergy of single-atom Ni1 and Ru1 sites on CeO2 for dry reforming of CH4 [J].Journal of the American Chemical Society2019141(18):7283-7293.
57 WANG Ye, LI Li, LI Guiying,et al.Synergy of oxygen vacancies and Ni0 species to promote the stability of a Ni/ZrO2 catalyst for dry reforming of methane at low temperatures[J].ACS Catalysis202313(10):6486-6496.
58 ZHANG Xiao, XU Yao, LIU Yang,et al.A novel Ni-MoCx Oy interfacial catalyst for syngas production via the chemical looping dry reforming of methane[J].Chem20239(1):102-116.
59 SHOJI S, PENG Xiaobo, YAMAGUCHI A,et al.Photocatalytic uphill conversion of natural gas beyond the limitation of thermal reaction systems[J].Nature Catalysis20203(2):148-153.
文章导航

/