Processing Effects on Structure, Strength, and Barrier Properties of Refiner-Produced Cellulose Nanofibril Layers
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[1] Michael D. Mason,et al. A comparative study of methods for porosity determination of cellulose based porous materials , 2020, Cellulose.
[2] D. Bousfield,et al. Paper-Based Oil Barrier Packaging using Lignin-Containing Cellulose Nanofibrils , 2020, Molecules.
[3] D. Bousfield,et al. The influence of versatile thiol-norbornene modifications to cellulose nanofibers on rheology and film properties. , 2020, Carbohydrate polymers.
[4] S. Shaler,et al. Birefringence-based orientation mapping of cellulose nanofibrils in thin films , 2019, Cellulose.
[5] J. Bras,et al. Thermo-compression of cellulose nanofibrils , 2019, Cellulose.
[6] J. Youngblood,et al. Wet-Stacking Lamination of Multilayer Mechanically Fibrillated Cellulose Nanofibril (CNF) Sheets with Increased Mechanical Performance for Use in High-Strength and Lightweight Structural and Packaging Applications , 2019, ACS Applied Polymer Materials.
[7] D. Bousfield,et al. The influence of pigment type and loading on water vapor barrier properties of paper coatings before and after folding , 2019, Progress in Organic Coatings.
[8] N. Stark,et al. Effects of bentonite on physical, mechanical and barrier properties of cellulose nanofibril hybrid films for packaging applications , 2019, Cellulose.
[9] D. Bousfield,et al. Fluorescent dye adsorption in aqueous suspension to produce tagged cellulose nanofibers for visualization on paper , 2019, Cellulose.
[10] U. Gasser,et al. Anisotropic Diffusion and Phase Behavior of Cellulose Nanocrystal Suspensions. , 2019, Langmuir : the ACS journal of surfaces and colloids.
[11] A. Gandini,et al. Recent advances in surface-modified cellulose nanofibrils , 2019, Progress in Polymer Science.
[12] K. Uetani,et al. Self-Alignment Sequence of Colloidal Cellulose Nanofibers Induced by Evaporation from Aqueous Suspensions , 2018, Colloids and Interfaces.
[13] Jasna S. Stevanic,et al. Effect of drying conditions on cellulose microfibril aggregation and “hornification” , 2018, Cellulose.
[14] D. Bousfield,et al. Application of cellulose nanofibril (CNF) as coating on paperboard at moderate solids content and high coating speed using blade coater , 2018, Progress in Organic Coatings.
[15] M. Nogi,et al. Clearly Transparent Nanopaper from Highly Concentrated Cellulose Nanofiber Dispersion Using Dilution and Sonication , 2018, Nanomaterials.
[16] D. Bousfield,et al. Moisture and Oxygen Barrier Properties of Cellulose Nanomaterial-Based Films , 2018 .
[17] L. Berglund,et al. Nematic structuring of transparent and multifunctional nanocellulose papers. , 2018, Nanoscale horizons.
[18] G. Tonoli,et al. Cellulose nanofibrils/nanoclay hybrid composite as a paper coating: Effects of spray time, nanoclay content and corona discharge on barrier and mechanical properties of the coated papers , 2017 .
[19] A. Dufresne,et al. A new quality index for benchmarking of different cellulose nanofibrils. , 2017, Carbohydrate polymers.
[20] Todd Hoare,et al. Review of Hydrogels and Aerogels Containing Nanocellulose , 2017 .
[21] Martin A. Hubbe,et al. Nanocellulose in Thin Films, Coatings, and Plies for Packaging Applications: A Review , 2017, BioResources.
[22] D. Bousfield,et al. Substrate role in coating of microfibrillated cellulose suspensions , 2017, Cellulose.
[23] Saeed Mohammadnejad,et al. Cellulose nanofibils as coating material and its effects on paper properties , 2016 .
[24] Martti Toivakka,et al. Rheology of cellulose nanofibers suspensions: Boundary driven flow , 2016 .
[25] Yanlin Song,et al. Rate-dependent interface capture beyond the coffee-ring effect , 2016, Scientific Reports.
[26] D. Bousfield,et al. Comparison of nano- and microfibrillated cellulose films , 2014, Cellulose.
[27] E. J. Foster,et al. Comparison of the properties of cellulose nanocrystals and cellulose nanofibrils isolated from bacteria, tunicate, and wood processed using acid, enzymatic, mechanical, and oxidative methods. , 2014, ACS applied materials & interfaces.
[28] Nathalie Lavoine,et al. Impact of different coating processes of microfibrillated cellulose on the mechanical and barrier properties of paper , 2014, Journal of Materials Science.
[29] Kristin Syverud,et al. Cellulose nanofibrils: Challenges and possibilities as a paper additive or coating material – A review , 2014 .
[30] L. Rigal,et al. High Pressure Compression-Molding of α-Cellulose and Effects of Operating Conditions , 2013, Materials.
[31] Øyvind Weiby Gregersen,et al. The formation and characterization of sustainable layered films incorporating Microfibrillated Cellulose (MFC) , 2012 .
[32] J. Padding,et al. How Péclet number affects microstructure and transient cluster aggregation in sedimenting colloidal suspensions. , 2012, The Journal of chemical physics.
[33] Ashlie Martini,et al. Cellulose nanomaterials review: structure, properties and nanocomposites. , 2011, Chemical Society reviews.
[34] Øyvind Weiby Gregersen,et al. Rheological Studies of Microfibrillar Cellulose Water Dispersions , 2011 .
[35] Mikael Gällstedt,et al. Oxygen and oil barrier properties of microfibrillated cellulose films and coatings , 2010 .
[36] Marielle Henriksson,et al. Cellulose nanopaper structures of high toughness. , 2008, Biomacromolecules.
[37] M. Doi,et al. Simple model of skin formation caused by solvent evaporation in polymer solutions. , 2006, Physical review letters.
[38] P. Gennes. Solvent evaporation of spin cast films: "crust" effects , 2001, cond-mat/0111117.
[39] A. Dufresne,et al. Thermoplastic Nanocomposites Filled With Wheat Straw Cellulose Whiskers. Part II: Effect of Processing and Modeling , 1997 .
[40] Kholodenko,et al. Generalized Stokes-Einstein equation for spherical particle suspensions. , 1995, Physical review. E, Statistical physics, plasmas, fluids, and related interdisciplinary topics.