New Insight on Promoted thermostability of poplar wood modified by MnFe2O4 nanoparticles through the pyrolysis behaviors and kinetic study

Abstract In this study, we employed pyrolysis behavior and kinetics by Flynn–Wall–Ozawa method and Friedman method to analysis the thermostability of the MnFe2O4 nanoparticles/poplar wood composite, and analyzed the change of different proportion of MnFe2O4 in these composites for the thermostabilit...

Full description

Bibliographic Details
Main Authors: Hanwei Wang, Qiufang Yao, Chao Wang, Bitao Fan, Ye Xiong, Yipeng Chen, Qingfeng Sun, Chunde Jin, Zhongqing Ma
Format: Article
Language:English
Published: Nature Publishing Group 2017-05-01
Series:Scientific Reports
Online Access:https://doi.org/10.1038/s41598-017-01597-4
id doaj-154e2c52e1cc45ca80c502d50a74873d
record_format Article
spelling doaj-154e2c52e1cc45ca80c502d50a74873d2020-12-08T01:04:02ZengNature Publishing GroupScientific Reports2045-23222017-05-017111210.1038/s41598-017-01597-4New Insight on Promoted thermostability of poplar wood modified by MnFe2O4 nanoparticles through the pyrolysis behaviors and kinetic studyHanwei Wang0Qiufang Yao1Chao Wang2Bitao Fan3Ye Xiong4Yipeng Chen5Qingfeng Sun6Chunde Jin7Zhongqing Ma8School of Engineering, Zhejiang A&F UniversitySchool of Engineering, Zhejiang A&F UniversitySchool of Engineering, Zhejiang A&F UniversitySchool of Engineering, Zhejiang A&F UniversitySchool of Engineering, Zhejiang A&F UniversitySchool of Engineering, Zhejiang A&F UniversitySchool of Engineering, Zhejiang A&F UniversitySchool of Engineering, Zhejiang A&F UniversitySchool of Engineering, Zhejiang A&F UniversityAbstract In this study, we employed pyrolysis behavior and kinetics by Flynn–Wall–Ozawa method and Friedman method to analysis the thermostability of the MnFe2O4 nanoparticles/poplar wood composite, and analyzed the change of different proportion of MnFe2O4 in these composites for the thermostability by contrasting activation energy between the different samples. The pyrolysis processes of these composites were comprehensively investigated at different heating rates (10, 20, 30 and 40 °C/min−1) and pyrolysis temperatures of 600 °C in N2 and air atmosphere. These results indicated the thermostability of composites improved as the proportion of the MnFe2O4 nanoparticles increased. And the structure analyses of these composites from the microscopic view point of nanoparticles were applied to analysis the reason of thermostability enhancement of the poplar wood after coating MnFe2O4 nanoparticles. Additionally, due to its high initial oxidative decomposition temperature under air atmosphere, this composite and its preparation method might have high application potential, such as flameresistant material and wood security storage. This method also could provide a reference for other biomass materials. Synthesized MnFe2O4/C composite under the guidance of pyrolysis behaviors and kinetic study in N2 atmosphere exhibited good adsorption capacity (84.18 mg/g) for removing methylene blue dye in aqueous solution and easy separation characteristic.https://doi.org/10.1038/s41598-017-01597-4
collection DOAJ
language English
format Article
sources DOAJ
author Hanwei Wang
Qiufang Yao
Chao Wang
Bitao Fan
Ye Xiong
Yipeng Chen
Qingfeng Sun
Chunde Jin
Zhongqing Ma
spellingShingle Hanwei Wang
Qiufang Yao
Chao Wang
Bitao Fan
Ye Xiong
Yipeng Chen
Qingfeng Sun
Chunde Jin
Zhongqing Ma
New Insight on Promoted thermostability of poplar wood modified by MnFe2O4 nanoparticles through the pyrolysis behaviors and kinetic study
Scientific Reports
author_facet Hanwei Wang
Qiufang Yao
Chao Wang
Bitao Fan
Ye Xiong
Yipeng Chen
Qingfeng Sun
Chunde Jin
Zhongqing Ma
author_sort Hanwei Wang
title New Insight on Promoted thermostability of poplar wood modified by MnFe2O4 nanoparticles through the pyrolysis behaviors and kinetic study
title_short New Insight on Promoted thermostability of poplar wood modified by MnFe2O4 nanoparticles through the pyrolysis behaviors and kinetic study
title_full New Insight on Promoted thermostability of poplar wood modified by MnFe2O4 nanoparticles through the pyrolysis behaviors and kinetic study
title_fullStr New Insight on Promoted thermostability of poplar wood modified by MnFe2O4 nanoparticles through the pyrolysis behaviors and kinetic study
title_full_unstemmed New Insight on Promoted thermostability of poplar wood modified by MnFe2O4 nanoparticles through the pyrolysis behaviors and kinetic study
title_sort new insight on promoted thermostability of poplar wood modified by mnfe2o4 nanoparticles through the pyrolysis behaviors and kinetic study
publisher Nature Publishing Group
series Scientific Reports
issn 2045-2322
publishDate 2017-05-01
description Abstract In this study, we employed pyrolysis behavior and kinetics by Flynn–Wall–Ozawa method and Friedman method to analysis the thermostability of the MnFe2O4 nanoparticles/poplar wood composite, and analyzed the change of different proportion of MnFe2O4 in these composites for the thermostability by contrasting activation energy between the different samples. The pyrolysis processes of these composites were comprehensively investigated at different heating rates (10, 20, 30 and 40 °C/min−1) and pyrolysis temperatures of 600 °C in N2 and air atmosphere. These results indicated the thermostability of composites improved as the proportion of the MnFe2O4 nanoparticles increased. And the structure analyses of these composites from the microscopic view point of nanoparticles were applied to analysis the reason of thermostability enhancement of the poplar wood after coating MnFe2O4 nanoparticles. Additionally, due to its high initial oxidative decomposition temperature under air atmosphere, this composite and its preparation method might have high application potential, such as flameresistant material and wood security storage. This method also could provide a reference for other biomass materials. Synthesized MnFe2O4/C composite under the guidance of pyrolysis behaviors and kinetic study in N2 atmosphere exhibited good adsorption capacity (84.18 mg/g) for removing methylene blue dye in aqueous solution and easy separation characteristic.
url https://doi.org/10.1038/s41598-017-01597-4
work_keys_str_mv AT hanweiwang newinsightonpromotedthermostabilityofpoplarwoodmodifiedbymnfe2o4nanoparticlesthroughthepyrolysisbehaviorsandkineticstudy
AT qiufangyao newinsightonpromotedthermostabilityofpoplarwoodmodifiedbymnfe2o4nanoparticlesthroughthepyrolysisbehaviorsandkineticstudy
AT chaowang newinsightonpromotedthermostabilityofpoplarwoodmodifiedbymnfe2o4nanoparticlesthroughthepyrolysisbehaviorsandkineticstudy
AT bitaofan newinsightonpromotedthermostabilityofpoplarwoodmodifiedbymnfe2o4nanoparticlesthroughthepyrolysisbehaviorsandkineticstudy
AT yexiong newinsightonpromotedthermostabilityofpoplarwoodmodifiedbymnfe2o4nanoparticlesthroughthepyrolysisbehaviorsandkineticstudy
AT yipengchen newinsightonpromotedthermostabilityofpoplarwoodmodifiedbymnfe2o4nanoparticlesthroughthepyrolysisbehaviorsandkineticstudy
AT qingfengsun newinsightonpromotedthermostabilityofpoplarwoodmodifiedbymnfe2o4nanoparticlesthroughthepyrolysisbehaviorsandkineticstudy
AT chundejin newinsightonpromotedthermostabilityofpoplarwoodmodifiedbymnfe2o4nanoparticlesthroughthepyrolysisbehaviorsandkineticstudy
AT zhongqingma newinsightonpromotedthermostabilityofpoplarwoodmodifiedbymnfe2o4nanoparticlesthroughthepyrolysisbehaviorsandkineticstudy
_version_ 1724395224598315008