Liquefaction of Peanut Shells with Cation Exchange Resin and Sulfuric Acid as Dual Catalyst for the Subsequent Synthesis of Rigid Polyurethane Foam

The conversion of lignocellulosic biomass from renewable raw materials to high value-added fine chemicals expanded their application in biodegradable polymers materials synthesis, such as polyurethanes and phenolic resin, etc. In this work, the strong-acid cation exchange resin and sulfuric acid as...

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Main Authors: Qinqin Zhang, Weisheng Chen, Guojuan Qu, Xiaoqi Lin, Dezhi Han, Xiaofei Yan, Heng Zhang
Format: Article
Language:English
Published: MDPI AG 2019-06-01
Series:Polymers
Subjects:
Online Access:https://www.mdpi.com/2073-4360/11/6/993
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spelling doaj-1a595621478947db931571967b02fca02020-11-25T00:16:04ZengMDPI AGPolymers2073-43602019-06-0111699310.3390/polym11060993polym11060993Liquefaction of Peanut Shells with Cation Exchange Resin and Sulfuric Acid as Dual Catalyst for the Subsequent Synthesis of Rigid Polyurethane FoamQinqin Zhang0Weisheng Chen1Guojuan Qu2Xiaoqi Lin3Dezhi Han4Xiaofei Yan5Heng Zhang6Shandong Provincial Key Laboratory of Biochemical Engineering, College of Marine Science and Biological Engineering, Qingdao University of Science and Technology, Qingdao 266042, ChinaShandong Provincial Key Laboratory of Biochemical Engineering, College of Marine Science and Biological Engineering, Qingdao University of Science and Technology, Qingdao 266042, ChinaShandong Provincial Key Laboratory of Biochemical Engineering, College of Marine Science and Biological Engineering, Qingdao University of Science and Technology, Qingdao 266042, ChinaShandong Provincial Key Laboratory of Biochemical Engineering, College of Marine Science and Biological Engineering, Qingdao University of Science and Technology, Qingdao 266042, ChinaCollege of Chemical Engineering, Qingdao University of Science and Technology, Qingdao 266042, ChinaQingdao Institute of Bioenergy and Bioprocess Technology, Chinese Academy of Sciences, Qingdao 266101, ChinaShandong Provincial Key Laboratory of Biochemical Engineering, College of Marine Science and Biological Engineering, Qingdao University of Science and Technology, Qingdao 266042, ChinaThe conversion of lignocellulosic biomass from renewable raw materials to high value-added fine chemicals expanded their application in biodegradable polymers materials synthesis, such as polyurethanes and phenolic resin, etc. In this work, the strong-acid cation exchange resin and sulfuric acid as the dual catalyst offered an effective way to catalyze the liquefaction reaction of the peanut shells. The properties of liquefied products were characterized by means of hydroxyl value, viscosity and solubility tests, while the properties of peanut shells and liquefaction residue were analyzed by means of ATR-FTIR, TG and SEM techniques. The results indicated that the liquefied products could be completely dissolved in deionized water, methanol and polyethylene glycol, respectively, and they could be a preferable substitution of petrochemical polyols as soft segments to synthesize the rigid polyurethane foams. Moreover, the cellulose and hemicellulose in the peanut shells were easily decomposed into smaller molecules via the breakage of the C−O bond besides five-membered and hexatomic ring, while the lignin could be degraded via the breakage of the C−O chemical bonds of β-O-4, 4-O-5 and dibenzodioxocin units. The fabricated rigid polyurethane (RPU) foam, containing higher percentage of open pores with uniform size, can be potentially utilized for flower mud and sound-absorbing materials.https://www.mdpi.com/2073-4360/11/6/993lignocellulosic biomasspeanut shellsliquefaction reactionstrong-acid cation exchange resinpolyolsrigid polyurethane foam
collection DOAJ
language English
format Article
sources DOAJ
author Qinqin Zhang
Weisheng Chen
Guojuan Qu
Xiaoqi Lin
Dezhi Han
Xiaofei Yan
Heng Zhang
spellingShingle Qinqin Zhang
Weisheng Chen
Guojuan Qu
Xiaoqi Lin
Dezhi Han
Xiaofei Yan
Heng Zhang
Liquefaction of Peanut Shells with Cation Exchange Resin and Sulfuric Acid as Dual Catalyst for the Subsequent Synthesis of Rigid Polyurethane Foam
Polymers
lignocellulosic biomass
peanut shells
liquefaction reaction
strong-acid cation exchange resin
polyols
rigid polyurethane foam
author_facet Qinqin Zhang
Weisheng Chen
Guojuan Qu
Xiaoqi Lin
Dezhi Han
Xiaofei Yan
Heng Zhang
author_sort Qinqin Zhang
title Liquefaction of Peanut Shells with Cation Exchange Resin and Sulfuric Acid as Dual Catalyst for the Subsequent Synthesis of Rigid Polyurethane Foam
title_short Liquefaction of Peanut Shells with Cation Exchange Resin and Sulfuric Acid as Dual Catalyst for the Subsequent Synthesis of Rigid Polyurethane Foam
title_full Liquefaction of Peanut Shells with Cation Exchange Resin and Sulfuric Acid as Dual Catalyst for the Subsequent Synthesis of Rigid Polyurethane Foam
title_fullStr Liquefaction of Peanut Shells with Cation Exchange Resin and Sulfuric Acid as Dual Catalyst for the Subsequent Synthesis of Rigid Polyurethane Foam
title_full_unstemmed Liquefaction of Peanut Shells with Cation Exchange Resin and Sulfuric Acid as Dual Catalyst for the Subsequent Synthesis of Rigid Polyurethane Foam
title_sort liquefaction of peanut shells with cation exchange resin and sulfuric acid as dual catalyst for the subsequent synthesis of rigid polyurethane foam
publisher MDPI AG
series Polymers
issn 2073-4360
publishDate 2019-06-01
description The conversion of lignocellulosic biomass from renewable raw materials to high value-added fine chemicals expanded their application in biodegradable polymers materials synthesis, such as polyurethanes and phenolic resin, etc. In this work, the strong-acid cation exchange resin and sulfuric acid as the dual catalyst offered an effective way to catalyze the liquefaction reaction of the peanut shells. The properties of liquefied products were characterized by means of hydroxyl value, viscosity and solubility tests, while the properties of peanut shells and liquefaction residue were analyzed by means of ATR-FTIR, TG and SEM techniques. The results indicated that the liquefied products could be completely dissolved in deionized water, methanol and polyethylene glycol, respectively, and they could be a preferable substitution of petrochemical polyols as soft segments to synthesize the rigid polyurethane foams. Moreover, the cellulose and hemicellulose in the peanut shells were easily decomposed into smaller molecules via the breakage of the C−O bond besides five-membered and hexatomic ring, while the lignin could be degraded via the breakage of the C−O chemical bonds of β-O-4, 4-O-5 and dibenzodioxocin units. The fabricated rigid polyurethane (RPU) foam, containing higher percentage of open pores with uniform size, can be potentially utilized for flower mud and sound-absorbing materials.
topic lignocellulosic biomass
peanut shells
liquefaction reaction
strong-acid cation exchange resin
polyols
rigid polyurethane foam
url https://www.mdpi.com/2073-4360/11/6/993
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