Enhancement of the nanofibrillation of birch cellulose pretreated with natural deep eutectic solvent

被引:68
作者
Hong, Shu [1 ,2 ]
Yuan, Yang [1 ]
Li, Panpan [2 ]
Zhang, Kaitao [2 ]
Lian, Hailan [1 ]
Liimatainen, Henrikki [2 ]
机构
[1] Nanjing Forestry Univ, Coll Mat Sci & Engn, Nanjing 210037, Peoples R China
[2] Univ Oulu, Fibre & Particle Engn Res Unit, POB 4300, Oulu 90014, Finland
基金
中国国家自然科学基金; 芬兰科学院;
关键词
Deep eutectic solvent; Birch cellulose; Sustainable; Cellulose nanofiber; MOLECULAR-WEIGHT CHITIN; BETAINE HYDROCHLORIDE; NANOCRYSTALS; NANOFIBER; REGENERATION; HYDROLYSIS; EXTRACTION; FIBRILS; UREA;
D O I
10.1016/j.indcrop.2020.112677
中图分类号
S2 [农业工程];
学科分类号
0828 ;
摘要
In this study, we demonstrate a new bio-derived and non-toxic deep eutectic solvent composed of betaine hydrochloride (Bh) and glycerol (Gl) as a pretreatment medium for birch cellulose (Benda pendula) to prepare cellulose nanofibers (CNFs) using microfluidization. The co-solvent could readily penetrate into cellulose to swell the fibrillar structure and weaken the interaction within the hydrogen bond network. Moreover, the cationization of glycerol and cellulose by betaine hydrochloride further enhances the swelling process. All of these effects promote the nanofibrillation of cellulose and reduce the energy demand in CNF production. A high CNF mass yield of up to 72.5 % was obtained through co-solvent pretreatment using a Bh-to-Gl mole ratio of 1:2 at 150 degrees C for 1 h. The mole amount of betaine hydrochloride was noted to affect the nanofibrillation process and stability of the CNF suspension. The obtained CNFs possessed a cationic charge of 0.05-0.06 mmol/g, a diameter of 17-20 nm, and a degree of crystallinity of 67.7-74.4 %. The CNFs displayed good thermal stability comparable to that of the pristine cellulose. Thus, this study provides a green and efficient swelling strategy for producing CNFs with a low cationic charge density.
引用
收藏
页数:8
相关论文
共 53 条
[1]   Ionic liquids based upon metal halide/substituted quaternary ammonium salt mixtures [J].
Abbott, AP ;
Capper, G ;
Davies, DL ;
Rasheed, R .
INORGANIC CHEMISTRY, 2004, 43 (11) :3447-3452
[2]   Processing of cellulose nanofiber-reinforced composites [J].
Bhatnagar, A ;
Sain, M .
JOURNAL OF REINFORCED PLASTICS AND COMPOSITES, 2005, 24 (12) :1259-1268
[3]   Microemulsion Systems for Fiber Deconstruction into Cellulose Nanofibrils [J].
Carrillo, Carlos A. ;
Laine, Janne ;
Rojas, Orlando J. .
ACS APPLIED MATERIALS & INTERFACES, 2014, 6 (24) :22622-22627
[4]   Formation of high strength double-network gels from cellulose nanofiber/polyacrylamide via NaOH gelation treatment [J].
Chen, Chuchu ;
Li, Dagang ;
Abe, Kentaro ;
Yano, Hiroyuki .
CELLULOSE, 2018, 25 (09) :5089-5097
[5]   Highly conductive nanocomposites based on cellulose nanofiber networks via NaOH treatments [J].
Chen, Chuchu ;
Mo, Mengmin ;
Chen, Wenshuai ;
Pan, Mingzhu ;
Xu, Zhaoyang ;
Wang, Haiying ;
Li, Dagang .
COMPOSITES SCIENCE AND TECHNOLOGY, 2018, 156 :103-108
[6]   Reinforcement of cellulose nanofibers in polyacrylamide gels [J].
Chen, Chuchu ;
Wang, Haiying ;
Li, Suiyi ;
Fang, Lu ;
Li, Dagang .
CELLULOSE, 2017, 24 (12) :5487-5493
[7]   Impact of the chemical composition of cellulosic materials on the nanofibrillation process and nanopaper properties [J].
de Carvalho, Danila Morais ;
Moser, Carl ;
Lindstrom, Mikael E. ;
Sevastyanova, Olena .
INDUSTRIAL CROPS AND PRODUCTS, 2019, 127 :203-211
[8]   Cellulose nanomaterial reinforced polymer nanocomposites [J].
Dufresne, Alain .
CURRENT OPINION IN COLLOID & INTERFACE SCIENCE, 2017, 29 :1-8
[9]   Cellulose Nanocrystals: Chemistry, Self-Assembly, and Applications [J].
Habibi, Youssef ;
Lucia, Lucian A. ;
Rojas, Orlando J. .
CHEMICAL REVIEWS, 2010, 110 (06) :3479-3500
[10]   A stretchable and compressible ion gel based on a deep eutectic solvent applied as a strain sensor and electrolyte for supercapacitors [J].
Hong, Shu ;
Yuan, Yang ;
Liu, Chaozheng ;
Chen, Weimin ;
Chen, Ling ;
Lian, Hailan ;
Liimatainen, Henrikki .
JOURNAL OF MATERIALS CHEMISTRY C, 2020, 8 (02) :550-560