Effect of hydrothermal treatment of microfibrillated cellulose on rheological properties and formation of hydrolysis products

被引:7
作者
Hiltunen, Salla [1 ]
Heiskanen, Isto [2 ]
Backfolk, Kaj [1 ]
机构
[1] Lappeenranta Univ Technol, POB 20, Lappeenranta 53851, Finland
[2] Res Ctr Imatra, Tainionkoskentie 115, Imatra 55800, Finland
关键词
Microfibrillated cellulose; Nanocellulose; Hydrothermal treatment; Filtrate; Rheology; HOT-WATER EXTRACTION; NANOFIBRILLATED CELLULOSE; ACID-HYDROLYSIS; SPRUCE WOOD; LEVULINIC ACID; PULP; SUSPENSIONS; GELS; HOMOGENIZATION; DISPERSIONS;
D O I
10.1007/s10570-018-1884-2
中图分类号
TB3 [工程材料学]; TS [轻工业、手工业、生活服务业];
学科分类号
0805 ; 080502 ; 0822 ;
摘要
The aim of this study was to determine the effects of hydrothermal treatment of microfibrillated cellulose (MFC) on its gel stability, water retention and rheological behavior. MFC gel was prepared by fibrillating endoglucanase pre-treated, never-dried dissolving pulp. The MFC gel samples were then exposed in a static chamber for different times at different temperatures. At temperatures of 120-150 A degrees C, the viscosity profile of the gels was not significantly changed and a characteristic series of 3 successive regimes in the course of increasing shear rate, showing different behavior was revealed. The amount of water released by the samples under pressure, on the other hand, was notably increased after hydrothermal treatment. After further exposure to prolonged treatment times (24 h) and higher temperature (180 A degrees C), a significant decrease in viscosity and shear modulus was observed. Analysis of filtrates revealed the formation of cello-oligosaccharides, glucose and HMF and a decrease in surface tension indicating peeling and molecular degradation of the sample matrice. The microfibralled cellulose sample decomposition and gel network structure breakdown on a molecular level is discussed.
引用
收藏
页码:4653 / 4662
页数:10
相关论文
共 44 条
[1]   Rheological characterization of microfibrillated cellulose suspensions after freezing [J].
Agoda-Tandjawa, G. ;
Durand, S. ;
Berot, S. ;
Blassel, C. ;
Gaillard, C. ;
Garnier, C. ;
Doublier, J. -L. .
CARBOHYDRATE POLYMERS, 2010, 80 (03) :677-686
[2]   SOME EFFECTS OF ELEVATED-TEMPERATURES ON THE STRUCTURE OF CELLULOSE AND ITS TRANSFORMATION [J].
ATALLA, RH ;
ELLIS, JD ;
SCHROEDER, LR .
JOURNAL OF WOOD CHEMISTRY AND TECHNOLOGY, 1984, 4 (04) :465-482
[3]   Purification of cellulosic pulp by hot water extraction [J].
Borrega, Marc ;
Sixta, Herbert .
CELLULOSE, 2013, 20 (06) :2803-2812
[4]  
Davidson G.F., 1943, J TEXTILE I T, V34, pT87, DOI [DOI 10.1080/19447024308659271, 10.1080/19447024308659271]
[5]   Preparation and characterization of water-redispersible nanofibrillated cellulose in powder form [J].
Eyholzer, Ch. ;
Bordeanu, N. ;
Lopez-Suevos, F. ;
Rentsch, D. ;
Zimmermann, T. ;
Oksman, K. .
CELLULOSE, 2010, 17 (01) :19-30
[6]   Colloidal Stability of Aqueous Nanofibrillated Cellulose Dispersions [J].
Fall, Andreas B. ;
Lindstrom, Stefan B. ;
Sundman, Ola ;
Odberg, Lars ;
Wagberg, Lars .
LANGMUIR, 2011, 27 (18) :11332-11338
[7]   Kinetics of autocatalytic acid hydrolysis of cellulose with crystalline and amorphous fractions [J].
Gehlen, Marcelo H. .
CELLULOSE, 2010, 17 (02) :245-252
[8]   EFFECT OF PH AND NEUTRAL SALTS UPON THE SWELLING OF CELLULOSE GELS [J].
GRIGNON, J ;
SCALLAN, AM .
JOURNAL OF APPLIED POLYMER SCIENCE, 1980, 25 (12) :2829-2843
[9]   Acid hydrolysis of some industrial pulps:: effect of hydrolysis conditions and raw material [J].
Håkansson, H ;
Ahlgren, P .
CELLULOSE, 2005, 12 (02) :177-183
[10]   Mechanistic Insights into Lewis Acid Metal Salt-Catalyzed Glucose Chemistry in Aqueous Solution [J].
Hannah Nguyen ;
Nikolakis, Vladimiros ;
Vlachos, Dionisios G. .
ACS CATALYSIS, 2016, 6 (03) :1497-1504