Citation: QIAO Wei-jun, ZHANG Kai-wen, ZHANG Na, ZHANG Lei, QING Shao-jun, GAO Zhi-xian. Study on CuAl2O4 catalytic material for methanol steam reforming[J]. Journal of Fuel Chemistry and Technology, ;2020, 48(8): 980-985. shu

Study on CuAl2O4 catalytic material for methanol steam reforming

  • Corresponding author: ZHANG Lei, lnpuzhanglei@163.com GAO Zhi-xian, gaozx@sxicc.ac.cn
  • Received Date: 9 July 2020
    Revised Date: 28 July 2020

    Fund Project: Scientific Research Funds project of Liaoning Education Department L2019038the National Natural Science Foundation of China 21376237the Natural Science Fund in Liaoning Province 2019-MS-221The project was supported by the National Natural Science Foundation of China (21376237), Scientific Research Funds project of Liaoning Education Department (L2019038), the Natural Science Fund in Liaoning Province (2019-MS-221)

Figures(5)

  • The CuAl2O4 catalytic material was in-situ synthesized using γ-Al2O3 as raw material. The catalytic material was characterized by XRF, XRD, BET and H2-TPR. The effect of the copper-aluminum molar ratios on the structure and properties of CuAl2O4 spinel catalytic material and its performance in hydrogen production from methanol steam reforming were investigated. The results show that the copper-aluminum molar ratios affects reduction performance of copper species, which affects its performance in catalyzing methanol steam reforming to produce hydrogen. When the copper-aluminum molar ratios is 1:2, CuAl2O4 catalytic material has better catalytic performance. When the reaction temperature is 260℃, with a water-methanol molar ratio of 1.2 and methanol gas hourly space velocity of 800 h-1, the methanol conversion reaches 100%, the hydrogen production rate is 895 mL/(kg·s).
  • 加载中
    1. [1]

      LIN L, ZHOU W, GAO R, YAO S, ZHANG X, XU W. Low-temperature hydrogen production from water and methanol using Pt/α-MoC catalysts[J]. Nature, 2017,544(7648):80-83. doi: 10.1038/nature21672

    2. [2]

      CLAUDE L. From hydrogen production by water electrolysis to its utilization in a PEM fuel cell or in a SO fuel cell:Some considerations on the energy efficiencies[J]. Int J Hydrogen Energy, 2016,41(34):15415-15425. doi: 10.1016/j.ijhydene.2016.04.173

    3. [3]

      HOSSAIN M A, JEWARATNAM J, GANESAN P. Prospect of hydrogen production from oil palm biomass by thermochemical process-A review[J]. Int J Hydrogen Energy, 2016,41(38):16637-16655. doi: 10.1016/j.ijhydene.2016.07.104

    4. [4]

      SA S, SILVA H, BRANDAO L, SOUSA J M, MENDES A. Catalysts for methanol steam reforming-A review[J]. Appl Catal B:Environ, 2010,99(1/2):43-57.  

    5. [5]

      LYTKINA A A, ZHILYAEVA N A, ERMILOVA M M, OREKHOVA N V, YAROSLAVTSEV A B. Influence of the support structure and composition of Ni-Cu-based catalysts on hydrogen production by methanol steam reforming[J]. Int J Hydrogen Energy, 2015,40(31):9677-9684. doi: 10.1016/j.ijhydene.2015.05.094

    6. [6]

      HE J P, YANG Z X, ZHANG L, LI Y, PAN L W. Cu supported on ZnAl-LDHs precursor prepared by in-situ synthesis method on γ-Al2O3 as catalytic material with high catalytic activity for methanol steam reforming[J]. Int J Hydrogen Energy, 2017,42(15):9930-9937. doi: 10.1016/j.ijhydene.2017.01.229

    7. [7]

      CHOI H J, KANG M. Hydrogen production from methanol/water decomposition in a liquid photosystem using the anatase structure of Cu loaded[J]. Int J Hydrogen Energy, 2007,32(16):3841-3848. doi: 10.1016/j.ijhydene.2007.05.011

    8. [8]

      SANCHES S G, FLORES J H, DA SILVA M I P. Cu/ZnO and Cu/ZnO/ZrO2 catalysts used for methanol steam reforming[J]. Mol Catal, 2018,454:55-62. doi: 10.1016/j.mcat.2018.05.012

    9. [9]

      DAS D, LLORCA J, DOMINGUEZ M, COLUSSI S, TROVARELLI A, GAYEN A. Methanol steam reforming behavior of copper impregnated over CeO2-ZrO2 derived from a surfactant assisted coprecipitation route[J]. Int J Hydrogen Energy, 2015,40(33):10463-10479. doi: 10.1016/j.ijhydene.2015.06.130

    10. [10]

      XU T K, ZOU J, TAO W T, ZHANG S Y, CUI L, ZENG F L, WANG D Z, CAI W J. I Co-nanocasting synthesis of Cu based composite oxide and its promoted catalytic activity for methanol steam reforming[J]. Fuel, 2018,183:238-244.  

    11. [11]

      HUANG Y H, WANG S F, TSAI A P, KAMEOKA S. Catalysts prepared from copper-nickel ferrites for the steam reforming of methanol[J]. J Power Sources, 2015,281:138-145. doi: 10.1016/j.jpowsour.2015.01.168

    12. [12]

      QIN Fa-jie, LIU Ya-jie, QING Shao-jun, HOU Xiao-ning, GAO Zhi-xian. Study on Cu-Al spinel slow-release catalyst for methanol-to-hydrogen production the effect of different copper sources[J]. J Fuel Chem Technol, 2017,45(12):84-91.  

    13. [13]

      XI Hong-juan, LI Guang-jun, QING Shao-jun, HOU Xiao-ning, ZHAO Jin-zhen, LIU Ya-jie, GAO Zhi-xian. Solid-state synthesis of copper-aluminum spinel catalyzed methanol reforming reaction[J]. J Fuel Chem Technol, 2013,41(8):998-1002.  

    14. [14]

      LI Guang-jun, XI Hong-juan, ZHANG Su-hong, GU Chuan-tao, QING Shao-jun, HOU Xiao-ning, GAO Zhi-xian. Characteristics of spinel CuM2O4 (M=Al, Fe, Cr) catalyzed methanol reforming reaction[J]. J Fuel Chem Technol, 2012,40(12):60-65.  

    15. [15]

      YAHIRO H, NAKAYA K, YAMAMOTO T, SAIKI K, YAMAURA H. Effect of calcination temperature on the catalytic activity of copper supported on γ-alumina for the water-gas-shift reaction[J]. Catal Commun, 2006,7(4):228-231. doi: 10.1016/j.catcom.2005.11.004

    16. [16]

      XI H J, HOU X N, LIU Y J, QING S J, GAO Z X. Cu-Al spinel oxide as an efficient catalyst for methanol steam reforming[J]. Angew Chem Int Edit, 2014,126:12080-12083. doi: 10.1002/ange.201405213

    17. [17]

      SU Shi-long, ZHANG Lie, ZHANG Yan, LEI Jun-teng, GUI Jian-zhou, LIU Dan, LIU Dao-sheng, PAN Li-wei. Thermodynamic simulation of hydrogen production process from kilowatt PEMFC methanol steam reforming[J]. J Petro Univ, 2015,28(2):21-25.  

    18. [18]

      YANG S Q, ZHOU F, LIU Y J, ZHANG L, YU C, WANG H H, TIAN Y, ZHANG C S, LIU D S. Morphology effect of ceria on the performance of CuO/CeO2 catalysts for hydrogen production by methanol steam reforming[J]. Int J Hydrogen Energy, 2019,44(14):7252-7261. doi: 10.1016/j.ijhydene.2019.01.254

    19. [19]

      YANG Shu-qian, HE Jian-ping, ZHANG Na, SUI Xiao-wei, ZHANG Lie, YANG Zhan-xu. Effect of rare-earth element modification on the performance of Cu/ZnAl catalysts derived from hydrotalcite precursor in methanol steam reforming[J]. J Fuel Chem Technol, 2018,46(2):179-188.  

    20. [20]

      LIU Yu-juan, WANG Dong-zhe, ZHANG Lie, WANG Hong-hao, CHEN Lin, LIU Dao-sheng, HAN Jiao, ZHANG Cai-shun. Effect of carrier roasting atmosphere on CuO/CeO2 catalyst for methanol steam reforming[J]. J Fuel Chem Technol, 2018,46(8):992-999.  

    21. [21]

      ZHANG L, PAN L W, NI C J, SUN T J, ZHAO S S, WANG S D, WANG A J, HU Y K. CeO2-ZrO2-promoted CuO/ZnO catalyst for methanol steam reforming[J]. Int J Hydrogen Energy, 2013,38(11):4397-4406. doi: 10.1016/j.ijhydene.2013.01.053

    22. [22]

      SONG Q L, MEN Y, WANG J G, LIU S, CHAI S S, AN W, WANG K, LI Y Y, TANG Y H. Methanol steam reforming for hydrogen production over ternary composite ZnyCe1Zr9Ox catalysts[J]. Int J Hydrogen Energy, 2020,45(16):9592-9602. doi: 10.1016/j.ijhydene.2020.01.175

  • 加载中
    1. [1]

      Qin Hu Liuyun Chen Xinling Xie Zuzeng Qin Hongbing Ji Tongming Su . Ni掺杂构建电子桥及激活MoS2惰性基面增强光催化分解水产氢. Acta Physico-Chimica Sinica, 2024, 40(11): 2406024-. doi: 10.3866/PKU.WHXB202406024

    2. [2]

      Tongtong Zhao Yan Wang Shiyue Qin Liang Xu Zhenhua Li . New Experiment Development: Upgrading and Regeneration of Discarded PET Plastic through Electrocatalysis. University Chemistry, 2024, 39(3): 308-315. doi: 10.3866/PKU.DXHX202309003

    3. [3]

      Yuchen Zhou Huanmin Liu Hongxing Li Xinyu Song Yonghua Tang Peng Zhou . Designing thermodynamically stable noble metal single-atom photocatalysts for highly efficient non-oxidative conversion of ethanol into high-purity hydrogen and value-added acetaldehyde. Acta Physico-Chimica Sinica, 2025, 41(6): 100067-. doi: 10.1016/j.actphy.2025.100067

    4. [4]

      Xue Liu Lipeng Wang Luling Li Kai Wang Wenju Liu Biao Hu Daofan Cao Fenghao Jiang Junguo Li Ke Liu . Cu基和Pt基甲醇水蒸气重整制氢催化剂研究进展. Acta Physico-Chimica Sinica, 2025, 41(5): 100049-. doi: 10.1016/j.actphy.2025.100049

    5. [5]

      Ziliang KANGJiamin ZHANGHong ANXiaohua LIUYang CHENJinping LILibo LI . Preparation and water adsorption properties of CaCl2@MOF-808 in-situ composite moulded particles. Chinese Journal of Inorganic Chemistry, 2024, 40(11): 2133-2140. doi: 10.11862/CJIC.20240282

    6. [6]

      Jianyu Qin Yuejiao An Yanfeng ZhangIn Situ Assembled ZnWO4/g-C3N4 S-Scheme Heterojunction with Nitrogen Defect for CO2 Photoreduction. Acta Physico-Chimica Sinica, 2024, 40(12): 2408002-. doi: 10.3866/PKU.WHXB202408002

    7. [7]

      Wei Zhong Dan Zheng Yuanxin Ou Aiyun Meng Yaorong Su . K原子掺杂高度面间结晶的g-C3N4光催化剂及其高效H2O2光合成. Acta Physico-Chimica Sinica, 2024, 40(11): 2406005-. doi: 10.3866/PKU.WHXB202406005

    8. [8]

      Guoqiang Chen Zixuan Zheng Wei Zhong Guohong Wang Xinhe Wu . 熔融中间体运输导向合成富氨基g-C3N4纳米片用于高效光催化产H2O2. Acta Physico-Chimica Sinica, 2024, 40(11): 2406021-. doi: 10.3866/PKU.WHXB202406021

    9. [9]

      Ling Liu Haibin Wang Genrong Qiang . Curriculum Ideological and Political Design for the Comprehensive Preparation Experiment of Ethyl Benzoate Synthesized from Benzyl Alcohol. University Chemistry, 2024, 39(2): 94-98. doi: 10.3866/PKU.DXHX202304080

    10. [10]

      Wanmin Cheng Juan Du Peiwen Liu Yiyun Jiang Hong Jiang . Photoinitiated Grignard Reagent Synthesis and Experimental Improvement in Triphenylmethanol Preparation. University Chemistry, 2024, 39(5): 238-242. doi: 10.3866/PKU.DXHX202311066

    11. [11]

      Wen YANGDidi WANGZiyi HUANGYaping ZHOUYanyan FENG . La promoted hydrotalcite derived Ni-based catalysts: In situ preparation and CO2 methanation performance. Chinese Journal of Inorganic Chemistry, 2024, 40(3): 561-570. doi: 10.11862/CJIC.20230276

    12. [12]

      Xiaofang Li Zhigang Wang . Modulating dz2-orbital occupancy of Au cocatalysts for enhanced photocatalytic H2O2 production. Acta Physico-Chimica Sinica, 2025, 41(7): 100080-. doi: 10.1016/j.actphy.2025.100080

    13. [13]

      Yang Xia Kangyan Zhang Heng Yang Lijuan Shi Qun Yi . 构建双通道路径增强iCOF/Bi2O3 S型异质结在纯水体系中光催化合成H2O2性能. Acta Physico-Chimica Sinica, 2024, 40(11): 2407012-. doi: 10.3866/PKU.WHXB202407012

    14. [14]

      Jian Jin Jing Cheng Xueping Yang . Integration Practice of Organic Chemistry Experiment and Safety Education: Taking the Synthesis of Triphenylmethanol as an Example. University Chemistry, 2024, 39(3): 345-350. doi: 10.3866/PKU.DXHX202309010

    15. [15]

      Shiyi WANGChaolong CHENXiangjian KONGLansun ZHENGLasheng LONG . Polynuclear lanthanide compound [Ce4Ce6(μ3-O)4(μ4-O)4(acac)14(CH3O)6]·2CH3OH for the hydroboration of amides to amine. Chinese Journal of Inorganic Chemistry, 2025, 41(1): 88-96. doi: 10.11862/CJIC.20240342

    16. [16]

      Fei ZHOUXiaolin JIA . Co3O4/TiO2 composite photocatalyst: Preparation and synergistic degradation performance of toluene. Chinese Journal of Inorganic Chemistry, 2024, 40(11): 2232-2240. doi: 10.11862/CJIC.20240236

    17. [17]

      Dong-Xue Jiao Hui-Li Zhang Chao He Si-Yu Chen Ke Wang Xiao-Han Zhang Li Wei Qi Wei . Layered (C5H6ON)2[Sb2O(C2O4)3] with a large birefringence derived from the uniform arrangement of π-conjugated units. Chinese Journal of Structural Chemistry, 2024, 43(6): 100304-100304. doi: 10.1016/j.cjsc.2024.100304

    18. [18]

      Xiuzheng DengChanghai LiuXiaotong YanJingshan FanQian LiangZhongyu Li . Carbon dots anchored NiAl-LDH@In2O3 hierarchical nanotubes for promoting selective CO2 photoreduction into CH4. Chinese Chemical Letters, 2024, 35(6): 108942-. doi: 10.1016/j.cclet.2023.108942

    19. [19]

      Sikai Wu Xuefei Wang Huogen Yu . Hydroxyl-enriched hydrous tin dioxide-coated BiVO4 with boosted photocatalytic H2O2 production. Chinese Journal of Structural Chemistry, 2024, 43(12): 100457-100457. doi: 10.1016/j.cjsc.2024.100457

    20. [20]

      Yahui HANJinjin ZHAONing RENJianjun ZHANG . Synthesis, crystal structure, thermal decomposition mechanism, and fluorescence properties of benzoic acid and 4-hydroxy-2, 2′: 6′, 2″-terpyridine lanthanide complexes. Chinese Journal of Inorganic Chemistry, 2025, 41(5): 969-982. doi: 10.11862/CJIC.20240395

Metrics
  • PDF Downloads(14)
  • Abstract views(1709)
  • HTML views(286)

通讯作者: 陈斌, bchen63@163.com
  • 1. 

    沈阳化工大学材料科学与工程学院 沈阳 110142

  1. 本站搜索
  2. 百度学术搜索
  3. 万方数据库搜索
  4. CNKI搜索
Address:Zhongguancun North First Street 2,100190 Beijing, PR China Tel: +86-010-82449177-888
Powered By info@rhhz.net

/

DownLoad:  Full-Size Img  PowerPoint
Return