Determination of length distribution of TEMPO-oxidized cellulose nanofibrils by field-flow fractionation/multi-angle laser-light scattering analysis

被引:0
作者
Ryoya Hiraoki
Reina Tanaka
Yuko Ono
Masahide Nakamura
Takuya Isogai
Tsuguyuki Saito
Akira Isogai
机构
[1] The University of Tokyo,Department of Biomaterial Sciences
[2] Shoko Science,undefined
来源
Cellulose | 2018年 / 25卷
关键词
TEMPO-oxidized cellulose nanofibril; Length distribution; Field-flow fractionation; Multi-angle laser-light scattering; Acid-hydrolyzed TEMPO-oxidized cellulose nanofibril;
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摘要
Aqueous nanocellulose dispersions were prepared from wood cellulose by 2,2,6,6-tetramethylpiperidine-1-oxyl radical (TEMPO)-mediated oxidation. The obtained TEMPO-oxidized cellulose was converted into TEMPO-oxidized cellulose nanofibrils (TOCNs) of different lengths by controlling the nanofibrillation conditions in water or using dilute acid hydrolysis. The average lengths and length distributions of TOCNs have been measured from transmission electron microscopy (TEM) and atomic force microscopy (AFM) images. However, because the number of nanocelluloses observable in TEM and AFM images is limited, a more reliable method is needed to obtain the lengths/length distributions of TOCNs. In this study, the aqueous TOCN dispersions were subjected to a combination of field-flow fractionation (FFF) and multi-angle laser-light scattering (MALLS). The optimum FFF operation conditions for the acid-hydrolyzed TOCN were first established to obtain reasonable data. For TOCNs with average lengths > 400 nm, suitable separation could not be achieved using the FFF/MALLS system. In contrast, the TOCNs with average lengths of 170 and 270 nm were adequately separated according to their sizes by the FFF system. The TOCN length distribution patterns corresponded well to those obtained from TEM images. However, the amounts of TOCNs with lengths > 250 nm were underestimated compared with those determined from TEM images. For TOCNs with average lengths of 170 and 270 nm, the molar mass at each TOCN length was determined using the FFF/MALLS system combined with a refractive index detector, where a specific refractive index increment of 0.165 mL/g was used for TOCN.
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页码:1599 / 1606
页数:7
相关论文
共 141 条
[1]  
Braun B(2008)Cellulosic nanowhiskers. Theory and application of light scattering from polydisperse sheroids in the Rayleigh–Gans–Deby regime Biomacromolecules 9 1255-1263
[2]  
Dorgan JR(2008)Size separation of single-wall carbon nanotubes by flow-field flow fractionation Anal Chem 80 2514-2523
[3]  
Chandler JP(2014)Re-constructing our models of cellulose and primary cell wall assembly Curr Opin Plant Biol 22 122-131
[4]  
Chun J(2002)Static and dynamic light scattering from polyelectrolyte microcrystal cellulose Langmuir 18 992-996
[5]  
Fagan JA(2004)Rodlike cellulose microcrystals: structure, properties, and applications Macromol Rapid Commun 25 771-787
[6]  
Hobbie EK(2009)Review: current international research into cellulose nanofibers and nanocomposites J Mater Sci 45 1-33
[7]  
Bauer BJ(2008)The shape and size distribution of crystalline nanoparticles prepared by acid hydrolysis of native cellulose Biomacromolecules 9 57-65
[8]  
Cosgrove DJ(2014)Dispersion stability and aggregation behavior of TEMPO-oxidized cellulose nanofibrils in water as a function of salt addition Cellulose 21 1553-1559
[9]  
de Souza Lima MM(2003)Environmental applications of flow field-flow fractionation (FIFFF) Trac Trends Anal Chem 22 615-633
[10]  
Borsali R(2012)Asymmetric flow field-flow fractionation with multiangle light scattering detection for characterization of cellulose nanocrystals Biomacromolecules 13 2671-2679