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Torrefaction at 200 °C of Pubescens Pretreated with AlCl(3) Aqueous Solution at Room Temperature

[Image: see text] Metal salt soaking–torrefaction conversion technology was investigated. It was found that AlCl(3) pretreatment of pubescens favored observably the yield of liquid and small-molecular products in torrefaction via changing the composition and structure of the raw material. The maximu...

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Autores principales: Wang, Yue, Liu, Yichen, Wang, Wenli, Liu, Longfei, Hu, Changwei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2020
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7594324/
https://www.ncbi.nlm.nih.gov/pubmed/33134735
http://dx.doi.org/10.1021/acsomega.0c04426
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author Wang, Yue
Liu, Yichen
Wang, Wenli
Liu, Longfei
Hu, Changwei
author_facet Wang, Yue
Liu, Yichen
Wang, Wenli
Liu, Longfei
Hu, Changwei
author_sort Wang, Yue
collection PubMed
description [Image: see text] Metal salt soaking–torrefaction conversion technology was investigated. It was found that AlCl(3) pretreatment of pubescens favored observably the yield of liquid and small-molecular products in torrefaction via changing the composition and structure of the raw material. The maximum conversion of pretreated samples, washed (PSW) and Y(liquid) were 15.5 and 10.8 wt % (with 0.26 wt % monosaccharides, 0.26 wt % carboxylic acids, 0.38 wt % furan compounds, and 1.28 wt % phenols), where 20.4 wt % hemicellulose, 22.9 wt % cellulose, and 5.7 wt % lignin were converted, respectively. However, for pretreated samples (PS), the maximum conversion and Y(liquid) reached 44.2 and 32.1 wt %, respectively, along with 96.0 wt % hemicellulose and 31.8 wt % cellulose converted, yielding 2.39 wt % monosaccharides, 5.14 wt % carboxylic acids, 2.60 wt % furan compounds and 10.52 wt % phenols, indicating obvious catalytic effects of residual AlCl(3) on the decomposition of the three major components in torrefaction. Two-dimensional HSQC and electrospray ionization mass spectrometry (ESI-MS) characterizations further confirmed the dominant formation of oligomers derived from holocellulose, lignin, and cross-linkage involving the lignin–carbohydrate complex, indicating that the catalytic thermal cleavage of β-O-4, C-O-C, β-β, 5–5, 4-O-5, C(α)–C(β), and α-O-4 linkages by aluminum species in the samples benefited the yield of liquid as well as monophenols.
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spelling pubmed-75943242020-10-30 Torrefaction at 200 °C of Pubescens Pretreated with AlCl(3) Aqueous Solution at Room Temperature Wang, Yue Liu, Yichen Wang, Wenli Liu, Longfei Hu, Changwei ACS Omega [Image: see text] Metal salt soaking–torrefaction conversion technology was investigated. It was found that AlCl(3) pretreatment of pubescens favored observably the yield of liquid and small-molecular products in torrefaction via changing the composition and structure of the raw material. The maximum conversion of pretreated samples, washed (PSW) and Y(liquid) were 15.5 and 10.8 wt % (with 0.26 wt % monosaccharides, 0.26 wt % carboxylic acids, 0.38 wt % furan compounds, and 1.28 wt % phenols), where 20.4 wt % hemicellulose, 22.9 wt % cellulose, and 5.7 wt % lignin were converted, respectively. However, for pretreated samples (PS), the maximum conversion and Y(liquid) reached 44.2 and 32.1 wt %, respectively, along with 96.0 wt % hemicellulose and 31.8 wt % cellulose converted, yielding 2.39 wt % monosaccharides, 5.14 wt % carboxylic acids, 2.60 wt % furan compounds and 10.52 wt % phenols, indicating obvious catalytic effects of residual AlCl(3) on the decomposition of the three major components in torrefaction. Two-dimensional HSQC and electrospray ionization mass spectrometry (ESI-MS) characterizations further confirmed the dominant formation of oligomers derived from holocellulose, lignin, and cross-linkage involving the lignin–carbohydrate complex, indicating that the catalytic thermal cleavage of β-O-4, C-O-C, β-β, 5–5, 4-O-5, C(α)–C(β), and α-O-4 linkages by aluminum species in the samples benefited the yield of liquid as well as monophenols. American Chemical Society 2020-10-15 /pmc/articles/PMC7594324/ /pubmed/33134735 http://dx.doi.org/10.1021/acsomega.0c04426 Text en © 2020 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Wang, Yue
Liu, Yichen
Wang, Wenli
Liu, Longfei
Hu, Changwei
Torrefaction at 200 °C of Pubescens Pretreated with AlCl(3) Aqueous Solution at Room Temperature
title Torrefaction at 200 °C of Pubescens Pretreated with AlCl(3) Aqueous Solution at Room Temperature
title_full Torrefaction at 200 °C of Pubescens Pretreated with AlCl(3) Aqueous Solution at Room Temperature
title_fullStr Torrefaction at 200 °C of Pubescens Pretreated with AlCl(3) Aqueous Solution at Room Temperature
title_full_unstemmed Torrefaction at 200 °C of Pubescens Pretreated with AlCl(3) Aqueous Solution at Room Temperature
title_short Torrefaction at 200 °C of Pubescens Pretreated with AlCl(3) Aqueous Solution at Room Temperature
title_sort torrefaction at 200 °c of pubescens pretreated with alcl(3) aqueous solution at room temperature
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7594324/
https://www.ncbi.nlm.nih.gov/pubmed/33134735
http://dx.doi.org/10.1021/acsomega.0c04426
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