Octadecylamine as chemical modifier for tuned hydrophobicity of surface modified cellulose: toward organophilic cellulose nanocrystals

被引:0
作者
Mohammed Majdoub
Younes Essamlali
Othmane Amadine
Ikram Ganetri
Anass Hafnaoui
Mehdi Khouloud
Mohamed Zahouily
机构
[1] University of Hassan II,Laboratory of Materials, Catalysis and Valorization of Natural Resources, Faculty of Sciences and Technologies Mohammedia
[2] MAScIR Foundation,Innovation Team
[3] VARENA Center,undefined
[4] Rabat Design,undefined
[5] OCP S.A,undefined
[6] Mohammed VI Polytechnic University,undefined
来源
Cellulose | 2021年 / 28卷
关键词
Organophilic cellulose nanocrystals; Amidation; Surface modification; Functionalization; Hydrophobicity;
D O I
暂无
中图分类号
学科分类号
摘要
A novel, environmentally friendly and simple method for chemical functionalization of microcrystalline cellulose (MCC) to produce organophilic cellulose nanocrystals (CNC-ODA) is herein proposed. Surface modification of MCC was successfully achieved by simple chemical oxidation followed by citric acid esterification and amidation reactions. The resultant nanocrystals were fully characterized for their chemical structure, morphology, crystalline structure, thermal stability, and surface hydrophobicity. FTIR analysis revealed that the long chain hydrocarbon structure was successfully grafted onto CNC surfaces. The crystallinity index of the cellulosic materials calculated by the Segal equation from the corresponding X-ray diffraction (XRD) patterns was relatively reduced from 83.27% for microcrystalline cellulose to 71.12% for organophilic cellulose nanocrystals (CNC-ODA). Moreover, CNC-ODA showed improved thermal stability than unmodified MCC as elucidated by TGA. Scanning electron microscopy, atomic force microscopy and transmission electron microscopy showed significant change in the size and shape of the produced nanocrystals. The effectiveness of ODA grafting was evidenced by the enhanced hydrophobicity and the long-term stability of the colloidal suspension of organophilic cellulose nanocrystals in various organic solvents which enables this material to be used as highly hydrophobic coating and reinforcing agent for solvent-borne nanocomposites systems. The adopted approach is qualified as environmentally friendly for mass-production of organophilic cellulose nanocrystals without any use of organic solvents or toxic reagents.
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页码:7717 / 7734
页数:17
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[1]  
Abraham E(2016)Highly hydrophobic thermally stable liquid crystalline cellulosic nanomaterials ACS Sustain Chem Eng 4 1338-1346
[2]  
Nevo Y(2005)Adsorption of a cationic surfactant onto cellulosic fibers I. Surface charge effects Langmuir 21 8106-8113
[3]  
Slattegard R(2001)Steric stabilization of a cellulose microcrystal suspension by poly(ethylene glycol) grafting Langmuir 17 21-27
[4]  
Alila S(2017)Simple citric acid-catalyzed surface esterification of cellulose nanocrystals Carbohydr Polym 157 1358-1364
[5]  
Boufi S(2010)Preparation by grafting onto, characterization, and properties of thermally responsive polymer-decorated cellulose nanocrystals Biomacromol 11 3652-3659
[6]  
Belgacem MN(2015)Surface peeling of cellulose nanocrystals resulting from periodate oxidation and reductive amination with water-soluble polymers Cellulose 22 3701-3714
[7]  
Beneventi D(2009)Gas-phase surface esterification of cellulose microfibrils and whiskers Biomacromol 10 2144-2151
[8]  
Araki J(2013)Light-healable supramolecular nanocomposites based on modified cellulose nanocrystals ACS Macro Lett 2 236-240
[9]  
Wada M(2008)Bioengineering bacterial cellulose/poly(ethylene oxide) nanocomposites Biomacromol 9 3427-3428
[10]  
Kuga S(2012)Grafting of cellulose by ring-opening polymerisation—a review Eur Polym J 48 1646-1659