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Self-Assembling Behavior of Cellulose Nanoparticles during Freeze-Drying: Effect of Suspension Concentration, Particle Size, Crystal Structure, and Surface Charge

Biomacromolecules · 2013 · Vol. 14(5) · pp. 1529–1540
Jingquan HanChengjun ZhouYiqiang WuFangyang LiuQinglin Wu

Abstract

Cellulose nanocrystals and cellulose nanofibers with I and II crystalline allomorphs (designated as CNC I, CNC II, CNF I, and CNF II) were isolated from bleached wood fibers by alkaline pretreatment and acid hydrolysis. The effects of concentration, particle size, surface charge, and crystal structure on the lyophilization-induced self-assembly of cellulose particles in aqueous suspensions were studied. Within the concentration range of 0.5 to 1.0 wt %, cellulose particles self-organized into lamellar structured foam composed of aligned membrane layers with widths between 0.5 and 3 μm. At 0.05 wt %, CNC I, CNF I, CNC II, and CNF II self-assembled into oriented ultrafine fibers with mean diameters of 0.57, 1.02, 1.50, and 1.00 μm, respectively. The size of self-assembled fibers became larger when more hydroxyl groups and fewer sulfates (weaker electrostatic repulsion) were on cellulose surfaces. Possible formation mechanism was inferred from ice growth and interaction between cellulose nanoparticles in liquid-crystalline suspensions.

Advanced Cellulose Research StudiesLignin and Wood ChemistryAerogels and thermal insulationCelluloseChemical engineeringLamellar structureSurface chargeNanoparticleNanofiberParticle sizeHydrolysisParticle (ecology)Aqueous solution

MeSH terms

CelluloseFreeze DryingHydrolysisParticle SizeSurface PropertiesSuspensionsWaterWoodMicroscopy, Electron, TransmissionNanoparticlesStatic ElectricityNanofibers
Citations
474
FWCI
15.45
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References
53
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Cited by
Cellulose Nanoparticles: Structure–Morphology–Rheology Relationships
ACS Sustainable Chemistry & Engineering · 2015 · 473 citations
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Self-Assembling Behavior of Cellulose Nanoparticles during Freeze-Drying: Effect of Suspension Concentration, Particle Size, Crystal Structure, and Surface Charge · Scinovex