Effect of Fe3+ ions on transformation of hydrolysis lignin in water under sub- and supercritical conditions

被引:2
作者
Bobrova, N. A. [1 ,2 ]
Bogdan, T. V. [1 ,2 ]
Mishanin, I. I. [1 ,2 ]
Koklin, A. E. [1 ]
Mashchenko, N. V. [1 ]
Smirnov, A. V. [1 ]
Firsov, D. A. [2 ]
Bogdan, V. I. [1 ,2 ]
机构
[1] Russian Acad Sci, N D Zelinsky Inst Organ Chem, 47 Leninsky prosp, Moscow 119991, Russia
[2] Lomonosov Moscow State Univ, Dept Chem, Build 3,1 Leninskie Gory, Moscow 119991, Russia
关键词
lignin; depolymerization; sub- and supercritical water; iron(<sc>iii</sc>); phenols; gasification; hydrogen production; CHEMISTRY; CATALYST; BIOMASS;
D O I
10.1007/s11172-023-4020-x
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The transformation of hydrolysis lignin in water under sub- and supercritical conditions (320-800(degrees)C, 10.0 MPa) in the presence of iron(iii) ions was studied. At temperatures above 400(degrees)C, two processes are most significant: deep depolymerization of lignin to phenolic monomers and condensation of aromatic moieties of lignin into carbonaceous deposits. In the presence of Fe3+ ions, the content of monomeric phenols increases 3-4-fold, which is indicative of the catalytic effect of iron in lignin depolymerization. When the reaction temperature increases from 400 to 660(degrees)C, the content of monomeric products (mainly, phenol and guaiacol) increases from 1.8 to 7.5 wt.%. Under the same conditions, considerable gasification of lignin monomers and oligomers to a hydrogen-rich mixture (up to 38 vol.%) takes place. The yield of carbon-containing gaseous products is independent of the presence of Fe3+ ions, retaining a value of 27% in terms of carbon. Further temperature rise up to 800(degrees)C decreases the content of the monomeric products of depolymerization and increases the contribution of gaseous products. In this case, the condensation of phenolic moieties to give carbonaceous deposits becomes the predominant reaction. The interaction of the Fe3+ ion with the beta-O-4-dimer of coniferyl alcohol was studied by quantum chemical calculations. According to the calculation results, in the presence of iron, the electron density of the highest occupied molecular orbital of the dimer partially shifts towards the iron ion, which facilitates cleavage of the C-bond.
引用
收藏
页码:2235 / 2240
页数:6
相关论文
共 26 条
[11]   Carbon Materials as Catalyst Supports and Catalysts in the Transformation of Biomass to Fuels and Chemicals [J].
Lam, Edmond ;
Luong, John H. T. .
ACS CATALYSIS, 2014, 4 (10) :3393-3410
[12]   Recent Advances in the Catalytic Depolymerization of Lignin towards Phenolic Chemicals: A Review [J].
Liu, Xudong ;
Bouxin, Florent P. ;
Fan, Jiajun ;
Budarin, Vitaliy L. ;
Hu, Changwei ;
Clark, James H. .
CHEMSUSCHEM, 2020, 13 (17) :4296-4317
[13]  
Lunin V V., 2010, Fizicheskaya Khimiya Lignina [Physical Chemistry of Lignin]
[14]   The ORCA program system [J].
Neese, Frank .
WILEY INTERDISCIPLINARY REVIEWS-COMPUTATIONAL MOLECULAR SCIENCE, 2012, 2 (01) :73-78
[15]   Applicability of Iron (III) Trimesic (Fe-BTC) to Enhance Lignin Separation from Pulp and Paper Wastewater [J].
Pangkumhang, Bhuckchanya ;
Jutaporn, Panitan ;
Sorachoti, Kwannapat ;
Khamdahsag, Pummarin ;
Tanboonchuy, Visanu .
SAINS MALAYSIANA, 2019, 48 (01) :199-208
[16]   β-O-4′ Dimerization of Coniferyl Alcohol: Ab Initio Study [J].
Petrenko, V. E. ;
Bogdan, T., V ;
Odintsova, E. G. ;
Antipova, M. L. ;
Bogdan, V., I .
RUSSIAN JOURNAL OF PHYSICAL CHEMISTRY A, 2022, 96 (03) :680-683
[17]   Study of the sedge (Carex) lignin by high-resolution mass spectrometry and NMR spectroscopy [J].
Pikovskoi, I. I. ;
Kosyakov, D. S. ;
Faleva, A., V ;
Shavrina, I. S. ;
Kozhevnikov, A. Yu ;
Ul'yanovskii, N., V .
RUSSIAN CHEMICAL BULLETIN, 2020, 69 (10) :2004-2012
[18]   Lignin structure and its engineering [J].
Ralph, John ;
Lapierre, Catherine ;
Boerjan, Wout .
CURRENT OPINION IN BIOTECHNOLOGY, 2019, 56 :240-249
[19]   Lignin valorization: Status, challenges and opportunities [J].
Sethupathy, Sivasamy ;
Morales, Garbriel Murillo ;
Gao, Lu ;
Wang, Hongliang ;
Yang, Bin ;
Jiang, Jianxiong ;
Sun, Jianzhong ;
Zhu, Daochen .
BIORESOURCE TECHNOLOGY, 2022, 347
[20]   Lignin as a base material for materials applications: Chemistry, application and economics [J].
Stewart, Derek .
INDUSTRIAL CROPS AND PRODUCTS, 2008, 27 (02) :202-207