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Monolithic biochar-supported cobalt-based catalysts with high-activity and superior-stability for biomass tar reforming

Author

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  • Tian, Beile
  • Mao, Songbo
  • Guo, Feiqiang
  • Bai, Jiaming
  • Shu, Rui
  • Qian, Lin
  • Liu, Qi

Abstract

In this paper, monolithic biochar-supported cobalt-based catalysts with unique long and through mesopores were synthesized based on the biological channels of biomass materials through simple impregnation and carbonization. Toluene steam reforming and biomass pyrolysis tar decomposition experiments were performed to evaluate the activity and stability of these monolithic catalysts. Regular channels with a diameter of around 20–40 μm are well retained after carbonization. Co, Co–Fe and Co–Ni alloy nanoparticles are formed and dispersed uniformly on the surface of the channels of the catalyst, which are anchored firmly by graphitic carbon layer. At 700 °C, the carbon deposition resistance of PC@CoFe and PC@CoNi was significantly improved due to the introduction of the Fe and Ni, and excellent performance was achieved during the 360 min continuous toluene reforming experiments. The average toluene reforming rate reached around 97% and 85.3% by using PC@CoNi and PC@CoFe as the catalysts, and H2 and CO were the main product with a small amount of CO2 and CH4. PC@CoNi also showed high activity in the decomposition of biomass pyrolysis tar with a high average tar conversion efficiency of around 91% and excellent stability in a five-cycle test, and H2 yield was also significantly improved.

Suggested Citation

  • Tian, Beile & Mao, Songbo & Guo, Feiqiang & Bai, Jiaming & Shu, Rui & Qian, Lin & Liu, Qi, 2022. "Monolithic biochar-supported cobalt-based catalysts with high-activity and superior-stability for biomass tar reforming," Energy, Elsevier, vol. 242(C).
  • Handle: RePEc:eee:energy:v:242:y:2022:i:c:s0360544221032199
    DOI: 10.1016/j.energy.2021.122970
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    References listed on IDEAS

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    1. Lu, Min & Lv, Pengmei & Yuan, Zhenhong & Li, Huiwen, 2013. "The study of bimetallic Ni–Co/cordierite catalyst for cracking of tar from biomass pyrolysis," Renewable Energy, Elsevier, vol. 60(C), pages 522-528.
    2. Luo, Juan & Sun, Shichang & Chen, Xing & Lin, Junhao & Ma, Rui & Zhang, Rui & Fang, Lin, 2021. "In-depth exploration of the energy utilization and pyrolysis mechanism of advanced continuous microwave pyrolysis," Applied Energy, Elsevier, vol. 292(C).
    3. Guo, Feiqiang & Liang, Shuang & Zhao, Xingmin & Jia, Xiaopeng & Peng, Kuangye & Jiang, Xiaochen & Qian, Lin, 2019. "Catalytic reforming of biomass pyrolysis tar using the low-cost steel slag as catalyst," Energy, Elsevier, vol. 189(C).
    4. Li, Jian & Jiao, Liguo & Tao, Junyu & Chen, Guanyi & Hu, Jianli & Yan, Beibei & Mansour, Mohy & Guo, Yaoyu & Ye, Peiwen & Ding, Zheng & Yu, Tianxiao, 2020. "Can microwave treat biomass tar? A comprehensive study based on experimental and net energy analysis," Applied Energy, Elsevier, vol. 272(C).
    5. Pio, D.T. & Tarelho, L.A.C. & Pinto, R.G. & Matos, M.A.A. & Frade, J.R. & Yaremchenko, A. & Mishra, G.S. & Pinto, P.C.R., 2018. "Low-cost catalysts for in-situ improvement of producer gas quality during direct gasification of biomass," Energy, Elsevier, vol. 165(PB), pages 442-454.
    6. Li, Longzhi & Yang, Zhijuan & Qin, Xiaomin & Chen, Jian & Yan, Keshuo & Zou, Guifu & Peng, Zhuoyan & Wang, Fumao & Song, Zhanlong & Ma, Chunyuan, 2019. "Toluene microwave-assisted reforming with CO2 or a mixed agent of CO2-H2O on Fe-doped activated biochar," Energy, Elsevier, vol. 177(C), pages 358-366.
    7. Chen, Guanyi & Li, Jian & Cheng, Zhanjun & Yan, Beibei & Ma, Wenchao & Yao, Jingang, 2018. "Investigation on model compound of biomass gasification tar cracking in microwave furnace: Comparative research," Applied Energy, Elsevier, vol. 217(C), pages 249-257.
    8. Buentello-Montoya, David & Zhang, Xiaolei & Li, Jun & Ranade, Vivek & Marques, Simão & Geron, Marco, 2020. "Performance of biochar as a catalyst for tar steam reforming: Effect of the porous structure," Applied Energy, Elsevier, vol. 259(C).
    9. Li, Jinhu & Burra, Kiran Raj G. & Wang, Zhiwei & Liu, Xuan & Gupta, Ashwani K., 2021. "Co-gasification of high-density polyethylene and pretreated pine wood," Applied Energy, Elsevier, vol. 285(C).
    10. Wang, Jingxing & Chung, Seokhyun & AlShelahi, Abdullah & Kontar, Raed & Byon, Eunshin & Saigal, Romesh, 2021. "Look-ahead decision making for renewable energy: A dynamic “predict and store” approach," Applied Energy, Elsevier, vol. 296(C).
    11. Zhang, Shuping & Yin, Haoxin & Wang, Jiaxing & Zhu, Shuguang & Xiong, Yuanquan, 2021. "Catalytic cracking of biomass tar using Ni nanoparticles embedded carbon nanofiber/porous carbon catalysts," Energy, Elsevier, vol. 216(C).
    12. Porcu, Andrea & Xu, Yupeng & Mureddu, Mauro & Dessì, Federica & Shahnam, Mehrdad & Rogers, William A. & Sastri, Bhima S. & Pettinau, Alberto, 2021. "Experimental validation of a multiphase flow model of a lab-scale fluidized-bed gasification unit," Applied Energy, Elsevier, vol. 293(C).
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    3. Xu, Liya & Dong, Kaiming & Guo, Feiqiang & Liu, Sha & Qiao, Qixia & Mao, Songbo & Qian, Lin & Bai, Yonghui, 2023. "Synthesis of zeolite-based porous catalysts from coal gasification fine slag for steam reforming of toluene," Energy, Elsevier, vol. 274(C).

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