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Lignin depolymerization for aromatic compounds over Ni-Ce/biochar catalyst under aqueous-phase glycerol

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  • Chen, Mingqiang
  • Li, Hong
  • Wang, Yishuang
  • Tang, Zhiyuan
  • Dai, Wei
  • Li, Chang
  • Yang, Zhonglian
  • Wang, Jun

Abstract

Developing an advanced catalytic system for the purposeful depolymerization of lignin into aromatic compounds has presented a significant prospect for green manufacturing. In this paper, the catalytic process of microporous biochar (BC) derived from lignin supported Ni-Ce catalysts (xNi-Ce/BC) coupling with the aqueous-phase glycerol medium was reported for the depolymerization of Kraft lignin to guaiacol and 4-alkyl guaiacols. Under the optimal conditions, 3Ni-Ce/BC yielded 59.02 % of lignin oil and simultaneously realized the highest yields of guaiacol (243.94 mg/g lignin) and 4-alkyl guaiacols (265.65 mg/g lignin). The characterization results revealed BC promoted the formation of metallic Ni sites and the interaction of Ni with CeO2 drove the generation of Ni-CeO2-x interfaces and oxygen vacancies (OV). These could adsorb and activate the CC and CO bonds of lignin and its depolymerized fragments to form reactive intermediates. Then, the Ni sites activated the aqueous-phase glycerol to form adsorbed H atoms, which then spilled over to the adjacent OV to stabilize reactive intermediates. Subsequently, the optimal distribution between Brønsted acid sites (BAS) and Lewis acid sites (LAS) in 3Ni-Ce/BC enhanced the yields of guaiacol and 4-alkyl guaiacols. The kinetic analysis adopting 2-phenoxy-1-phenylethanol as the β-O-4 bond model demonstrated that 3Ni-Ce/BC significantly reduced both the bond dissociation energy of β-O-4 bond and the apparent activation energy. Finally, the possible reaction mechanism of lignin depolymerization catalyzed by 3Ni-Ce/BC catalyst was proposed. This work provides a feasible method for the simultaneous utilization of lignin wastes and crude glycerol (the by-products of biodiesel market).

Suggested Citation

  • Chen, Mingqiang & Li, Hong & Wang, Yishuang & Tang, Zhiyuan & Dai, Wei & Li, Chang & Yang, Zhonglian & Wang, Jun, 2023. "Lignin depolymerization for aromatic compounds over Ni-Ce/biochar catalyst under aqueous-phase glycerol," Applied Energy, Elsevier, vol. 332(C).
  • Handle: RePEc:eee:appene:v:332:y:2023:i:c:s0306261922017469
    DOI: 10.1016/j.apenergy.2022.120489
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    References listed on IDEAS

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    1. Kong, Xiangchen & Liu, Chao & Wang, Xing & Fan, Yuyang & Xu, Weicong & Xiao, Rui, 2022. "Production of oxygen-containing fuels via supercritical methanol hydrodeoxygenation of lignin bio-oil over Cu/CuZnAlOx catalyst," Applied Energy, Elsevier, vol. 316(C).
    2. Fan, Liangliang & Ruan, Roger & Li, Jun & Ma, Longlong & Wang, Chenguang & Zhou, Wenguang, 2020. "Aromatics production from fast co-pyrolysis of lignin and waste cooking oil catalyzed by HZSM-5 zeolite," Applied Energy, Elsevier, vol. 263(C).
    3. Li, Tan & Su, Jing & Wang, Huiyuan & Wang, Cong & Xie, Wen & Wang, Kaige, 2022. "Catalytic hydropyrolysis of lignin using NiMo-doped catalysts: Catalyst evaluation and mechanism analysis," Applied Energy, Elsevier, vol. 316(C).
    4. Mohcin Akri & Shu Zhao & Xiaoyu Li & Ketao Zang & Adam F. Lee & Mark A. Isaacs & Wei Xi & Yuvaraj Gangarajula & Jun Luo & Yujing Ren & Yi-Tao Cui & Lei Li & Yang Su & Xiaoli Pan & Wu Wen & Yang Pan & , 2019. "Atomically dispersed nickel as coke-resistant active sites for methane dry reforming," Nature Communications, Nature, vol. 10(1), pages 1-10, December.
    5. Yang, Zixu & Lei, Hanwu & Zhang, Yayun & Qian, Kezhen & Villota, Elmar & Qian, Moriko & Yadavalli, Gayatri & Sun, Hua, 2018. "Production of renewable alkyl-phenols from catalytic pyrolysis of Douglas fir sawdust over biomass-derived activated carbons," Applied Energy, Elsevier, vol. 220(C), pages 426-436.
    6. Zhang, Xinghua & Tang, Wenwu & Zhang, Qi & Wang, Tiejun & Ma, Longlong, 2018. "Hydrodeoxygenation of lignin-derived phenoic compounds to hydrocarbon fuel over supported Ni-based catalysts," Applied Energy, Elsevier, vol. 227(C), pages 73-79.
    7. Li, Haowei & Ma, Hongwei & Zhao, Weijie & Li, Xuehui & Long, Jinxing, 2019. "Upgrading lignin bio-oil for oxygen-containing fuel production using Ni/MgO: Effect of the catalyst calcination temperature," Applied Energy, Elsevier, vol. 253(C), pages 1-1.
    8. Long, Jinxing & Shu, Riyang & Yuan, Zhengqiu & Wang, Tiejun & Xu, Ying & Zhang, Xinghua & Zhang, Qi & Ma, Longlong, 2015. "Efficient valorization of lignin depolymerization products in the present of NixMg1−xO," Applied Energy, Elsevier, vol. 157(C), pages 540-545.
    9. Ambursa, Murtala M. & Juan, Joon Ching & Yahaya, Y. & Taufiq-Yap, Y.H. & Lin, Yu-Chuan & Lee, Hwei Voon, 2021. "A review on catalytic hydrodeoxygenation of lignin to transportation fuels by using nickel-based catalysts," Renewable and Sustainable Energy Reviews, Elsevier, vol. 138(C).
    10. Yang, Jie & (Sophia) He, Quan & Yang, Linxi, 2019. "A review on hydrothermal co-liquefaction of biomass," Applied Energy, Elsevier, vol. 250(C), pages 926-945.
    11. Rong, Siteng & Tan, Hongzi & Pang, Zhaobin & Zong, Zhiyuan & Zhao, Rongrong & Li, Zhihe & Chen, Zhe-Ning & Zhang, Ning-Ning & Yi, Weiming & Cui, Hongyou, 2022. "Synergetic effect between Pd clusters and oxygen vacancies in hierarchical Nb2O5 for lignin-derived phenol hydrodeoxygenation into benzene," Renewable Energy, Elsevier, vol. 187(C), pages 271-281.
    12. Umar, Yusuf & Velasco, Orlando & Abdelaziz, Omar Y. & Aboelazayem, Omar & Gadalla, Mamdouh A. & Hulteberg, Christian P. & Saha, Basudeb, 2022. "A renewable lignin-derived bio-oil for boosting the oxidation stability of biodiesel," Renewable Energy, Elsevier, vol. 182(C), pages 867-878.
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