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Effects of solid base catalysts on depolymerization of alkali lignin for the production of phenolic monomer compounds

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  • Biswas, Bijoy
  • Kumar, Avnish
  • Krishna, Bhavya B.
  • Bhaskar, Thallada

Abstract

Different solid base catalysts such as CaO/CeO2, CaO/Al2O3, and CaO/ZrO2 were used for the depolymerization of alkali lignin. Various reaction parameters including reaction solvents (ethanol and methanol), time (30, 60, 90 and 120 min) and catalyst amounts have been screened at reaction temperature of 180 °C. Catalytic liquefaction produced higher bio-oil yield and maximum bio-oil yield (50.0 wt%) was obtained with ethanol and methanol solvent using different catalysts (CaO/ZrO2, and CaO/CeO2). Non-catalytic reaction and support catalysts produced lower bio-oil yield (42.0–46.0 wt%). The bio-oil was analyzed using GC-MS, 1H NMR, TOC, CHNS and FT-IR. It has been seen from the bio-oil analysis that vanillin was the main product with about 41.8–62.2 area%. This is due to solid base catalyst significantly enhancing the β-O-4 cleavage which increased the bio-oil yield as well as the selectivity of compound. The fundamental vibrations band at 2943 and 2978 cm−1 were observed for methoxy proton in catalytic bio-oil with higher intensity compared to the non-catalytic bio-oil. Maximum higher heating value (HHV) of bio-oil was observed with CaO/CeO2catalyst with methanol solvent (27.6 MJ/kg). It is suggested that the energy of the bio-oil can be enhanced by CaO/CeO2 catalyst using methanol solvent for liquefaction reaction.

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  • Biswas, Bijoy & Kumar, Avnish & Krishna, Bhavya B. & Bhaskar, Thallada, 2021. "Effects of solid base catalysts on depolymerization of alkali lignin for the production of phenolic monomer compounds," Renewable Energy, Elsevier, vol. 175(C), pages 270-280.
  • Handle: RePEc:eee:renene:v:175:y:2021:i:c:p:270-280
    DOI: 10.1016/j.renene.2021.04.039
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    1. Lehto, Jani & Oasmaa, Anja & Solantausta, Yrjö & Kytö, Matti & Chiaramonti, David, 2014. "Review of fuel oil quality and combustion of fast pyrolysis bio-oils from lignocellulosic biomass," Applied Energy, Elsevier, vol. 116(C), pages 178-190.
    2. Zhu, Chen & Cao, Jing-Pei & Feng, Xiao-Bo & Zhao, Xiao-Yan & Yang, Zhen & Li, Jun & Zhao, Ming & Zhao, Yun-Peng & Bai, Hong-Cun, 2021. "Theoretical insight into the hydrogenolysis mechanism of lignin dimer compounds based on experiments," Renewable Energy, Elsevier, vol. 163(C), pages 1831-1837.
    3. Wen, Jia-Long & Sun, Shao-Long & Yuan, Tong-Qi & Xu, Feng & Sun, Run-Cang, 2014. "Understanding the chemical and structural transformations of lignin macromolecule during torrefaction," Applied Energy, Elsevier, vol. 121(C), pages 1-9.
    4. Long, Jinxing & Xu, Ying & Wang, Tiejun & Yuan, Zhengqiu & Shu, Riyang & Zhang, Qi & Ma, Longlong, 2015. "Efficient base-catalyzed decomposition and in situ hydrogenolysis process for lignin depolymerization and char elimination," Applied Energy, Elsevier, vol. 141(C), pages 70-79.
    5. 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.
    6. Pin, Thaynara C. & Nascimento, Viviane M. & Costa, Aline C. & Pu, Yunqiao & Ragauskas, Arthur J. & Rabelo, Sarita C., 2020. "Structural characterization of sugarcane lignins extracted from different protic ionic liquid pretreatments," Renewable Energy, Elsevier, vol. 161(C), pages 579-592.
    7. Lin, Feng & Ma, Yulong & Sun, Yonggang & Zhao, Kanghe & Gao, Tingting & Zhu, Yingbo, 2021. "Heterogeneous Ni–Ru/H-ZSM-5 one-pot catalytic conversion of lignin into monophenols," Renewable Energy, Elsevier, vol. 170(C), pages 1070-1080.
    8. Özbay, Nurgül & Apaydın-Varol, Esin & Burcu Uzun, Başak & Eren Pütün, Ayşe, 2008. "Characterization of bio-oil obtained from fruit pulp pyrolysis," Energy, Elsevier, vol. 33(8), pages 1233-1240.
    9. Du, Boyu & Liu, Chao & Wang, Xing & Han, Ying & Guo, Yanzhu & Li, Haiming & Zhou, Jinghui, 2020. "Renewable lignin-based carbon nanofiber as Ni catalyst support for depolymerization of lignin to phenols in supercritical ethanol/water," Renewable Energy, Elsevier, vol. 147(P1), pages 1331-1339.
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    2. Wu, Haijun & Li, Xinlong & Zhang, Quan & Zhang, Kai & Xu, Xia & Xu, Jian, 2022. "Promoting the conversion of poplar to bio-oil based on the synergistic effect of alkaline hydrogen peroxide," Renewable Energy, Elsevier, vol. 192(C), pages 107-117.
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    4. Radhakrishnan, Rokesh & Manna, Bharat & Ghosh, Amit, 2023. "Molecular insights into dissolution of lignin bunch in ionic liquid-water mixture for enhanced biomass conversion," Renewable Energy, Elsevier, vol. 206(C), pages 47-59.

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