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Drozdov AD, deClaville Christiansen J. Structure-property relations in rheology of cellulose nanofibrils-based hydrogels. J Colloid Interface Sci 2025; 678:1-19. [PMID: 39178687 DOI: 10.1016/j.jcis.2024.08.118] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 06/29/2024] [Revised: 08/08/2024] [Accepted: 08/15/2024] [Indexed: 08/26/2024]
Abstract
Hydrogels prepared from self-assembled cellulose nanofibrils (CNFs) are widely used in biomedicine, electronics and environmental technology. Their ability to serve as inks for extrusion-based 3D printing is conventionally evaluated by means of rheological tests. A model is developed that describes the response of CNF gels in small- and large-amplitude oscillatory tests in a unified manner. The model involves a reasonably small number of material parameters, ensures good agreement between results of simulation and observations in oscillatory tests and correctly predicts the stress-strain Lissajous curves, experimental data in hysteresis loop tests, and measurements of the steady-state viscosity. The model is applied to analyze how composition and preparation conditions for CNF gels affect transition from shear thinning to weak strain overshoot in large-amplitude shear oscillatory tests. Based on the model, simple relations are derived for the fractal dimension of CNF clusters and the storage modulus of gels prepared in aqueous solutions of multivalent salts. The validity of these equations is confirmed by comparison of their predictions with observations in independent tests.
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Affiliation(s)
- A D Drozdov
- Department of Materials and Production, Aalborg University, Fibigerstraede 16, Aalborg 9220, Denmark.
| | - J deClaville Christiansen
- Department of Materials and Production, Aalborg University, Fibigerstraede 16, Aalborg 9220, Denmark
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2
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Cortes Ruiz MF, Brusentsev Y, Lindström SB, Xu C, Wågberg L. Shape-recovering nanocellulose networks: Preparation, characterization and modeling. Carbohydr Polym 2023; 315:120950. [PMID: 37230608 DOI: 10.1016/j.carbpol.2023.120950] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 01/31/2023] [Revised: 03/20/2023] [Accepted: 04/22/2023] [Indexed: 05/27/2023]
Abstract
Development of strong cellulose nanofibril (CNF) networks for advanced applications, such as in the biomedical field, is of high importance owing to the biocompatible nature and plant-based origin of cellulose nanofibrils. Nevertheless, lack of mechanical strength and complex synthesis methods hinder the application of these materials in areas where both toughness and manufacturing simplicity are required. In this work, we introduce a facile method for the synthesis of a low solid content (< 2 wt%), covalently crosslinked CNF hydrogel where Poly (N-isopropylacrylamide) (NIPAM) chains are utilized as crosslinks between the nanofibrils. The resulting networks have the capability to fully recover the shape in which they were formed after various drying and rewetting cycles. Characterization of the hydrogel and its constitutive components was performed using X-ray scattering, rheological investigations and uniaxial testing in compression. Influence of covalent crosslinks was compared with networks crosslinked by the addition of CaCl2. Among other things the results show that the mechanical properties of the hydrogels can be tuned by controlling the ionic strength of the surrounding medium. Finally, a mathematical model was developed based on the experimental results, which describes and predicts to a decent degree the large-deformation, elastoplastic behavior, and fracture of these networks.
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Affiliation(s)
- Maria F Cortes Ruiz
- Fiber Technology Division, Fiber and Polymer Technology Department, KTH Royal Institute of Technology, 114 28 Stockholm, Sweden; Wallenberg Wood Science Center, Fiber and Polymer Technology Department, KTH Royal Institute of Technology, 114 28 Stockholm, Sweden
| | - Yury Brusentsev
- Laboratory of Natural Materials Technology, Åbo Akademi University, 20500 Åbo, Finland
| | | | - Chunlin Xu
- Laboratory of Natural Materials Technology, Åbo Akademi University, 20500 Åbo, Finland
| | - Lars Wågberg
- Fiber Technology Division, Fiber and Polymer Technology Department, KTH Royal Institute of Technology, 114 28 Stockholm, Sweden; Wallenberg Wood Science Center, Fiber and Polymer Technology Department, KTH Royal Institute of Technology, 114 28 Stockholm, Sweden.
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3
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Kummer N, Giacomin CE, Fischer P, Campioni S, Nyström G. Amyloid fibril-nanocellulose interactions and self-assembly. J Colloid Interface Sci 2023; 641:338-347. [PMID: 36934581 DOI: 10.1016/j.jcis.2023.03.002] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 12/21/2022] [Revised: 02/20/2023] [Accepted: 03/01/2023] [Indexed: 03/07/2023]
Abstract
Amyloid fibrils from inexpensive food proteins and nanocellulose are renewable and biodegradable materials with broad ranging applications, such as water purification, bioplastics and biomaterials. To improve the mechanical properties of hybrid amyloid-nanocellulose materials, their colloidal interactions need to be understood and tuned. A combination of turbidity and zeta potential measurements, rheology and atomic force microscopy point to the importance of electrostatic interactions. These interactions lead to entropy-driven polyelectrolyte complexation for positively charged hen egg white lysozyme (HEWL) amyloids with negatively charged nanocellulose. The complexation increased the elasticity of the amyloid network by cross-linking individual fibrils. Scaling laws suggest different contributions to elasticity depending on nanocellulose morphology: cellulose nanocrystals induce amyloid bundling and network formation, while cellulose nanofibrils contribute to a second network. The contribution of the amyloids to the elasticity of the entire network structure is independent of nanocellulose morphology and agrees with theoretical scaling laws. Finally, strong and almost transparent hybrid amyloid-nanocellulose gels were prepared in a slow self-assembly started from repulsive co-dispersions above the isoelectric point of the amyloids, followed by dialysis to decrease the pH and induce amyloid-nanocellulose attraction and cross-linking. In summary, the gained knowledge on colloidal interactions provides an important basis for the design of functional biohybrid materials based on these two biopolymers.
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Affiliation(s)
- Nico Kummer
- Laboratory for Cellulose & Wood Materials, Empa - Swiss Federal Laboratories for Materials Science and Technology, Überlandstrasse 129, 8600 Dübendorf, Switzerland; Institute of Food Nutrition and Health, Schmelzbergstrasse 9, ETH Zurich, 8092 Zurich, Switzerland.
| | - Caroline E Giacomin
- Institute of Food Nutrition and Health, Schmelzbergstrasse 9, ETH Zurich, 8092 Zurich, Switzerland.
| | - Peter Fischer
- Institute of Food Nutrition and Health, Schmelzbergstrasse 9, ETH Zurich, 8092 Zurich, Switzerland.
| | - Silvia Campioni
- Laboratory for Cellulose & Wood Materials, Empa - Swiss Federal Laboratories for Materials Science and Technology, Überlandstrasse 129, 8600 Dübendorf, Switzerland.
| | - Gustav Nyström
- Laboratory for Cellulose & Wood Materials, Empa - Swiss Federal Laboratories for Materials Science and Technology, Überlandstrasse 129, 8600 Dübendorf, Switzerland; Institute of Food Nutrition and Health, Schmelzbergstrasse 9, ETH Zurich, 8092 Zurich, Switzerland.
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4
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Das R, Lindström T, Sharma PR, Chi K, Hsiao BS. Nanocellulose for Sustainable Water Purification. Chem Rev 2022; 122:8936-9031. [PMID: 35330990 DOI: 10.1021/acs.chemrev.1c00683] [Citation(s) in RCA: 74] [Impact Index Per Article: 24.7] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 12/12/2022]
Abstract
Nanocelluloses (NC) are nature-based sustainable biomaterials, which not only possess cellulosic properties but also have the important hallmarks of nanomaterials, such as large surface area, versatile reactive sites or functionalities, and scaffolding stability to host inorganic nanoparticles. This class of nanomaterials offers new opportunities for a broad spectrum of applications for clean water production that were once thought impractical. This Review covers substantial discussions based on evaluative judgments of the recent literature and technical advancements in the fields of coagulation/flocculation, adsorption, photocatalysis, and membrane filtration for water decontamination through proper understanding of fundamental knowledge of NC, such as purity, crystallinity, surface chemistry and charge, suspension rheology, morphology, mechanical properties, and film stability. To supplement these, discussions on low-cost and scalable NC extraction, new characterizations including solution small-angle X-ray scattering evaluation, and structure-property relationships of NC are also reviewed. Identifying knowledge gaps and drawing perspectives could generate guidance to overcome uncertainties associated with the adaptation of NC-enabled water purification technologies. Furthermore, the topics of simultaneous removal of multipollutants disposal and proper handling of post/spent NC are discussed. We believe NC-enabled remediation nanomaterials can be integrated into a broad range of water treatments, greatly improving the cost-effectiveness and sustainability of water purification.
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Affiliation(s)
- Rasel Das
- Department of Chemistry, Stony Brook University, Stony Brook, New York 11794-3400, United States
| | - Tom Lindström
- Department of Chemistry, Stony Brook University, Stony Brook, New York 11794-3400, United States.,KTH Royal Institute of Technology, Stockholm 100 44, Sweden
| | - Priyanka R Sharma
- Department of Chemistry, Stony Brook University, Stony Brook, New York 11794-3400, United States
| | - Kai Chi
- Department of Chemistry, Stony Brook University, Stony Brook, New York 11794-3400, United States
| | - Benjamin S Hsiao
- Department of Chemistry, Stony Brook University, Stony Brook, New York 11794-3400, United States
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5
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6
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Song HY, Park SY, Kim S, Youn HJ, Hyun K. Linear and nonlinear oscillatory rheology of chemically pretreated and non-pretreated cellulose nanofiber suspensions. Carbohydr Polym 2022; 275:118765. [PMID: 34742451 DOI: 10.1016/j.carbpol.2021.118765] [Citation(s) in RCA: 3] [Impact Index Per Article: 1.0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 07/08/2021] [Revised: 09/24/2021] [Accepted: 10/06/2021] [Indexed: 11/02/2022]
Abstract
Linear and nonlinear rheological properties of cellulose nanofiber (CNF) suspensions were measured under small and large amplitude oscillatory shear (SAOS and LAOS) flow. Four different CNFs were produced, two by only mechanical disintegration and two with chemical pretreatments. Linear viscoelastic properties distinguished chemically treated CNFs from two untreated fibers via a different scaling exponent of the elastic modulus. However, different mechanical fibrillation degree was not characterized via linear viscoelastic properties. In contrast, nonlinear viscoelastic properties reflected both effects of chemical pretreatments and mechanical fibrillation. More fibrillated CNFs exhibited nonlinear rheological phenomena at larger deformations. In addition, chemically treated CNFs exhibited greater network stiffness and higher network recovery rates due to the presence of charged functional groups on the fiber surfaces. A material-property co-plot showed that network stiffness and recovery rate were in a trade-off relationship.
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Affiliation(s)
- Hyeong Yong Song
- Institute for Environment and Energy, Pusan National University, Busan 46241, Republic of Korea
| | - Shin Young Park
- Department of Forest Sciences, Seoul National University, Seoul 08826, Republic of Korea
| | - Sunhyung Kim
- Platform Technology, Corporate R&D, LG Chem. Ltd., Gwacheon-si, Gyeonggi-do 13818, Republic of Korea
| | - Hye Jung Youn
- Department of Agriculture, Forestry and Bioresources, Seoul National University, Seoul 08826, Republic of Korea; Research Institute of Agriculture and Life Sciences, Seoul National University, Seoul 08826, Republic of Korea
| | - Kyu Hyun
- Institute for Environment and Energy, Pusan National University, Busan 46241, Republic of Korea; School of Applied Chemical Engineering, Pusan National University, Busan 46241, Republic of Korea.
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7
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Heise K, Kontturi E, Allahverdiyeva Y, Tammelin T, Linder MB, Nonappa, Ikkala O. Nanocellulose: Recent Fundamental Advances and Emerging Biological and Biomimicking Applications. ADVANCED MATERIALS (DEERFIELD BEACH, FLA.) 2021; 33:e2004349. [PMID: 33289188 PMCID: PMC11468234 DOI: 10.1002/adma.202004349] [Citation(s) in RCA: 160] [Impact Index Per Article: 40.0] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Received: 06/26/2020] [Revised: 08/01/2020] [Indexed: 06/12/2023]
Abstract
In the effort toward sustainable advanced functional materials, nanocelluloses have attracted extensive recent attention. Nanocelluloses range from rod-like highly crystalline cellulose nanocrystals to longer and more entangled cellulose nanofibers, earlier denoted also as microfibrillated celluloses and bacterial cellulose. In recent years, they have spurred research toward a wide range of applications, ranging from nanocomposites, viscosity modifiers, films, barrier layers, fibers, structural color, gels, aerogels and foams, and energy applications, until filtering membranes, to name a few. Still, nanocelluloses continue to show surprisingly high challenges to master their interactions and tailorability to allow well-controlled assemblies for functional materials. Rather than trying to review the already extensive nanocellulose literature at large, here selected aspects of the recent progress are the focus. Water interactions, which are central for processing for the functional properties, are discussed first. Then advanced hybrid gels toward (multi)stimuli responses, shape-memory materials, self-healing, adhesion and gluing, biological scaffolding, and forensic applications are discussed. Finally, composite fibers are discussed, as well as nanocellulose as a strategy for improvement of photosynthesis-based chemicals production. In summary, selected perspectives toward new directions for sustainable high-tech functional materials science based on nanocelluloses are described.
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Affiliation(s)
- Katja Heise
- Department of Bioproducts and BiosystemsAalto UniversityEspooFI‐00076Finland
- Center of Excellence in Molecular Engineering of Biosynthetic Hybrid Materials ResearchAalto UniversityFI‐00076Finland
| | - Eero Kontturi
- Department of Bioproducts and BiosystemsAalto UniversityEspooFI‐00076Finland
| | - Yagut Allahverdiyeva
- Molecular Plant BiologyDepartment of BiochemistryUniversity of TurkuTurkuFI‐20014Finland
| | - Tekla Tammelin
- VTT Technical Research Centre of Finland LtdVTT, PO Box 1000FIN‐02044EspooFinland
| | - Markus B. Linder
- Department of Bioproducts and BiosystemsAalto UniversityEspooFI‐00076Finland
- Center of Excellence in Molecular Engineering of Biosynthetic Hybrid Materials ResearchAalto UniversityFI‐00076Finland
| | - Nonappa
- Department of Bioproducts and BiosystemsAalto UniversityEspooFI‐00076Finland
- Center of Excellence in Molecular Engineering of Biosynthetic Hybrid Materials ResearchAalto UniversityFI‐00076Finland
- Department of Applied PhysicsAalto UniversityEspooFI‐00076Finland
- Faculty of Engineering and Natural SciencesTampere UniversityP.O. Box 541TampereFI‐33101Finland
| | - Olli Ikkala
- Department of Bioproducts and BiosystemsAalto UniversityEspooFI‐00076Finland
- Center of Excellence in Molecular Engineering of Biosynthetic Hybrid Materials ResearchAalto UniversityFI‐00076Finland
- Department of Applied PhysicsAalto UniversityEspooFI‐00076Finland
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8
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Corder RD, Adhikari P, Burroughs MC, Rojas OJ, Khan SA. Cellulose nanocrystals for gelation and percolation-induced reinforcement of a photocurable poly(vinyl alcohol) derivative. SOFT MATTER 2020; 16:8602-8611. [PMID: 32845269 DOI: 10.1039/d0sm01376e] [Citation(s) in RCA: 3] [Impact Index Per Article: 0.6] [Reference Citation Analysis] [Abstract] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 06/11/2023]
Abstract
Nanomaterials are regularly added to crosslinkable polymers to enhance mechanical properties; however, important effects related to gelation behavior and crosslinking kinetics are often overlooked. In this study, we combine cellulose nanocrystals (CNCs) with a photoactive poly(vinyl alcohol) derivative, PVA-SbQ, to form photocrosslinked nanocomposite hydrogels. We investigate the rheology of PVA-SbQ with and without CNCs to decipher the role of each component in final property development and identify a critical CNC concentration (1.5 wt%) above which several changes in rheological behavior are observed. Neat PVA-SbQ solutions exhibit Newtonian flow behavior across all concentrations, while CNC dispersions are shear-thinning <6 wt% and gel at high concentrations. Combining semi-dilute entangled PVA-SbQ (6 wt%) with >1.5 wt% CNCs forms a percolated microstructure. In situ photocrosslinking experiments reveal how CNCs affect both the gelation kinetics and storage modulus (G') of the resulting hydrogels. The modulus crossover time increases after addition of up to 1.5 wt% CNCs, while no modulus crossover is observed >1.5 wt% CNCs. A sharp increase in G' is observed >1.5 wt% CNCs for fully-crosslinked networks due to favorable PVA-SbQ/CNC interactions. A percolation model is fitted to the G' data to confirm that mechanical percolation is maintained after photocrosslinking. A ∼120% increase in G' for 2.5 wt% CNCs (relative to neat PVA-SbQ) confirms that CNCs provide a reinforcing effect through the percolated microstructure formed from PVA-SbQ/CNC interactions. The results are testament to the ability of CNCs to significantly alter the storage moduli of crosslinked polymer gels at low loading fractions through percolation-induced reinforcement.
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Affiliation(s)
- Ria D Corder
- Department of Chemical and Biomolecular Engineering, North Carolina State University, Raleigh, NC 27695, USA.
| | - Prajesh Adhikari
- Department of Chemical and Biomolecular Engineering, North Carolina State University, Raleigh, NC 27695, USA.
| | - Michael C Burroughs
- Department of Chemical and Biomolecular Engineering, North Carolina State University, Raleigh, NC 27695, USA.
| | - Orlando J Rojas
- Department of Chemical and Biomolecular Engineering, North Carolina State University, Raleigh, NC 27695, USA. and Department of Bioproducts and Biosystems, School of Chemical Engineering, Aalto University, Espoo, FI-00076, Finland and Bioproducts Institute, Department of Chemical and Biological Engineering, Chemistry and Wood Science, University of British Columbia, Vancouver BC V6T 1Z3, Canada.
| | - Saad A Khan
- Department of Chemical and Biomolecular Engineering, North Carolina State University, Raleigh, NC 27695, USA.
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9
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Facchine EG, Spontak RJ, Rojas OJ, Khan SA. Shear-Dependent Structures of Flocculated Micro/Nanofibrillated Cellulose (MNFC) in Aqueous Suspensions. Biomacromolecules 2020; 21:3561-3570. [DOI: 10.1021/acs.biomac.0c00586] [Citation(s) in RCA: 10] [Impact Index Per Article: 2.0] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 01/07/2023]
Affiliation(s)
| | | | - Orlando J. Rojas
- Department of Chemical & Biological Engineering, The University of British Columbia, Vancouver, British Columbia, Canada V6T 1Z3
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10
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Rüter A, Kuczera S, Gentile L, Olsson U. Arrested dynamics in a model peptide hydrogel system. SOFT MATTER 2020; 16:2642-2651. [PMID: 32119019 DOI: 10.1039/c9sm02244a] [Citation(s) in RCA: 6] [Impact Index Per Article: 1.2] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 05/23/2023]
Abstract
We report here on a peptide hydrogel system, which in contrast to most other such systems, is made up of relatively short fibrillar aggregates, discussing resemblance with colloidal rods. The synthetic model peptides A8K and A10K, where A denotes alanine and K lysine, self-assemble in aqueous solutions into ribbon-like aggregates having an average length 〈L〉 on the order of 100 nm and with a diameter d≈ 6 nm. The aggregates can be seen as weakly charged rigid rods and they undergo an isotropic to nematic phase transition at higher concentrations. Translational motion perpendicular to the rod axis gets strongly hindered when the concentration is increased above the overlap concentration. Similarly, the rotational motion is hindered, leading to very long stress relaxation times. The peptide self-assembly is driven by hydrophobic interactions and due to a net peptide charge the system is colloidally stable. However, at the same time short range, presumably hydrophobic, attractive interactions appear to affect the rheology of the system. Upon screening the long range electrostatic repulsion, with the addition of salt, the hydrophobic attraction becomes more dominant and we observe a transition from a repulsive glassy state to an attractive gel-state of the rod-like peptide aggregates.
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Affiliation(s)
- Axel Rüter
- Division of Physical Chemistry, Lund University, SE-22100 Lund, Sweden.
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11
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Agarwal D, Hewson L, Foster TJ. A comparison of the sensory and rheological properties of different cellulosic fibres for food. Food Funct 2018; 9:1144-1151. [PMID: 29362760 DOI: 10.1039/c7fo01495c] [Citation(s) in RCA: 13] [Impact Index Per Article: 1.9] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/21/2022]
Abstract
The impact of different cellulosic microstructures formed by highly entangled fibre networks was studied for food applications as dietary fibre. This paper reports the impact of the microstructure on the rheological and sensory behaviour of the aqueous suspensions of particulate and fibrillated forms of softwood cellulosic fibres, and was compared with citrus fibres. An aqueous suspension of cellulosic fibres shows stable viscoelastic gel-like behaviour as a function of frequency. The particulate form of cellulosic fibres showed the lowest shear viscosity as compared with the entangled network system at comparable concentrations. To provide further insight into the relationship between the structure of cellulosic fibre and taste (salt) perception, an aqueous suspension with matched shear viscosities were studied. A hypothesis to explain why softwood cellulosic fibre (CTE) with an entangled network structure prolongs the taste perception is presented.
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Affiliation(s)
- Deepa Agarwal
- Division of Food Sciences, School of Biosciences, University of Nottingham, Sutton Bonington Campus, Loughborough, LE12 5RD, UK.
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12
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Xu HN, Li YH. Decoupling Arrest Origins in Hydrogels of Cellulose Nanofibrils. ACS OMEGA 2018; 3:1564-1571. [PMID: 31458480 PMCID: PMC6641346 DOI: 10.1021/acsomega.7b01905] [Citation(s) in RCA: 6] [Impact Index Per Article: 0.9] [Reference Citation Analysis] [Abstract] [Track Full Text] [Subscribe] [Scholar Register] [Received: 12/01/2017] [Accepted: 01/26/2018] [Indexed: 06/08/2023]
Abstract
Colloidal gels with various architectures and different types of interactions provide a unique opportunity to shed light on the interplay between microscopic structures and mechanical properties of soft glassy materials. Here, we prepare acetylated cellulose nanofibrils with 2 degrees of substitution and make a structural and rheological characterization of their hydrogels. Two-step yielding processes are observed in the shear experiments, which allow us to deduce more precise knowledge regarding localized structural changes of the fibrils. We separate the viscoelastic response into two contributions: the establishment of cross-linked clusters on a fibril level and the arrested phase separation on a cluster level. We hypothesize that with the addition of salt, the hydrogels exhibit different arrested states that are identified as unable to access the thermodynamic equilibrium. Our results highlight that the coexistence of gelation and glass transitions are experimentally recognized in the hydrogels, with a global gelation driven by a local glasslike arrest during spinodal decomposition.
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Affiliation(s)
- Hua-Neng Xu
- State Key Laboratory
of Food Science and Technology and School of Food Science and Technology, Jiangnan University, 1800 Lihu Avenue, Wuxi, Jiangsu 214122, People’s Republic of China
| | - Ying-Hao Li
- State Key Laboratory
of Food Science and Technology and School of Food Science and Technology, Jiangnan University, 1800 Lihu Avenue, Wuxi, Jiangsu 214122, People’s Republic of China
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13
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Cellulose nanofibers as excipient for the delivery of poorly soluble drugs. Int J Pharm 2017; 533:285-297. [DOI: 10.1016/j.ijpharm.2017.09.064] [Citation(s) in RCA: 73] [Impact Index Per Article: 9.1] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 08/16/2017] [Revised: 09/20/2017] [Accepted: 09/22/2017] [Indexed: 12/13/2022]
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14
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Nechyporchuk O, Belgacem MN, Pignon F. Current Progress in Rheology of Cellulose Nanofibril Suspensions. Biomacromolecules 2016; 17:2311-20. [DOI: 10.1021/acs.biomac.6b00668] [Citation(s) in RCA: 158] [Impact Index Per Article: 17.6] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 01/23/2023]
Affiliation(s)
- Oleksandr Nechyporchuk
- Department
of Chemistry and Chemical Engineering, Division of Applied Chemistry, Chalmers University of Technology, SE-412 96 Gothenburg, Sweden
| | - Mohamed Naceur Belgacem
- Laboratory
of Pulp and Paper Science and Graphic Arts (LGP2), Centre national
de la recherche scientifique (CNRS), Agefpi, Université Grenoble Alpes, F-38000 Grenoble, France
| | - Frédéric Pignon
- Laboratoire
Rhéologie et Procédés (LRP), Centre national
de la recherche scientifique (CNRS), Université Grenoble Alpes, F-38000 Grenoble, France
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15
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Marakis J, Wunderlich K, Klapper M, Vlassopoulos D, Fytas G, Müllen K. Strong Physical Hydrogels from Fibrillar Supramolecular Assemblies of Poly(ethylene glycol) Functionalized Hexaphenylbenzenes. Macromolecules 2016. [DOI: 10.1021/acs.macromol.6b00528] [Citation(s) in RCA: 13] [Impact Index Per Article: 1.4] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 01/27/2023]
Affiliation(s)
- J. Marakis
- FORTH, Institute of Electronic Structure & Laser, N. Plastira 100, 70013, Heraklion, Greece
- Department of Materials Science & Technology, University of Crete, P.O. Box 2208, 71003 Heraklion, Greece
| | - K. Wunderlich
- Max Planck
Institute
for Polymer Research, Ackermannweg
10, 55128, Mainz, Germany
| | - M. Klapper
- Max Planck
Institute
for Polymer Research, Ackermannweg
10, 55128, Mainz, Germany
| | - D. Vlassopoulos
- FORTH, Institute of Electronic Structure & Laser, N. Plastira 100, 70013, Heraklion, Greece
- Department of Materials Science & Technology, University of Crete, P.O. Box 2208, 71003 Heraklion, Greece
| | - G. Fytas
- FORTH, Institute of Electronic Structure & Laser, N. Plastira 100, 70013, Heraklion, Greece
- Department of Materials Science & Technology, University of Crete, P.O. Box 2208, 71003 Heraklion, Greece
- Max Planck
Institute
for Polymer Research, Ackermannweg
10, 55128, Mainz, Germany
| | - K. Müllen
- Max Planck
Institute
for Polymer Research, Ackermannweg
10, 55128, Mainz, Germany
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16
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Quennouz N, Hashmi SM, Choi HS, Kim JW, Osuji CO. Rheology of cellulose nanofibrils in the presence of surfactants. SOFT MATTER 2016; 12:157-164. [PMID: 26466557 DOI: 10.1039/c5sm01803j] [Citation(s) in RCA: 62] [Impact Index Per Article: 6.9] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 06/05/2023]
Abstract
Cellulose nanofibrils (CNFs) present unique opportunities for rheology modification in complex fluids. Here we systematically consider the effect of ionic and non-ionic surfactants on the rheology of dilute CNF suspensions. Neat suspensions are transparent yield-stress fluids which display strong shear thinning and power-law dependence of modulus on concentration, G' ∼ c(2.1). Surfactant addition below a critical mass concentration cc produces an increase in the gel modulus with retention of optical clarity. Larger than critical concentrations induce significant fibril aggregation leading to the loss of suspension stability and optical clarity, and to aggregate sedimentation. The critical concentration was the lowest for a cationic surfactant (DTAB), cc ≈ 0.08%, while suspension stability was retained for non-ionic surfactants (Pluronic F68, TX100) at concentrations up to 8%. The anionic surfactant SDS led to a loss of stability at cc ≈ 1.6% whereas suspension stability was not compromised by anionic SLES up to 8%. Dynamic light scattering data are consistent with a scenario in which gel formation is driven by micelle-nanofibril bridging mediated by associative interactions of ethoxylated surfactant headgroups with the cellulose fibrils. This may explain the strong difference between the properties of SDS and SLES-modified suspensions. These results have implications for the use of CNFs as a rheology modifier in surfactant-containing systems.
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Affiliation(s)
- Nawal Quennouz
- Department of Chemical and Environmental Engineering, Yale University, New Haven CT 06511, USA.
| | - Sara M Hashmi
- Department of Chemical and Environmental Engineering, Yale University, New Haven CT 06511, USA.
| | - Hong Sung Choi
- Shinsegae International Co. Ltd, Seoul, 135-954, Republic of Korea
| | - Jin Woong Kim
- Department of Applied Chemistry, Hanyang University, Ansan, 426-791, Republic of Korea and Department of Biono Technology, Hanyang University, Ansan, 426-791, Republic of Korea
| | - Chinedum O Osuji
- Department of Chemical and Environmental Engineering, Yale University, New Haven CT 06511, USA.
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17
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Martoïa F, Dumont PJJ, Orgéas L, Belgacem MN, Putaux JL. On the origins of the elasticity of cellulose nanofiber nanocomposites and nanopapers: a micromechanical approach. RSC Adv 2016. [DOI: 10.1039/c6ra07176g] [Citation(s) in RCA: 16] [Impact Index Per Article: 1.8] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 01/13/2023] Open
Abstract
The elastic properties of cellulose nanofibril (NFC) nanocomposites and nanopapers are predicted by a multiscale network model that shows that the deformation mechanisms are governed by the bonds between rigid NFC segments and in the kinked regions.
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Affiliation(s)
- F. Martoïa
- Univ. Grenoble Alpes
- LGP2
- F-38000 Grenoble
- France
- CNRS
| | | | - L. Orgéas
- Univ. Grenoble Alpes
- 3SR Lab
- F-38000 Grenoble
- France
- CNRS
| | | | - J.-L. Putaux
- Univ. Grenoble Alpes
- CERMAV
- F-38000 Grenoble
- France
- CNRS
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18
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Veen SJ, Versluis P, Kuijk A, Velikov KP. Microstructure and rheology of microfibril-polymer networks. SOFT MATTER 2015; 11:8907-8912. [PMID: 26434637 DOI: 10.1039/c5sm02086g] [Citation(s) in RCA: 8] [Impact Index Per Article: 0.8] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 06/05/2023]
Abstract
By using an adsorbing polymer in combination with mechanical de-agglomeration, the microstructure and rheological properties of networks of microfibrils could be controlled. By the addition of sodium carboxymethyl cellulose during de-agglomeration of networks of bacterial cellulose, the microstructure could be changed from an inhomogeneous network with bundles of microfibrils and voids to a more homogeneous spread and alignment of the particles. As a result the macroscopic rheological properties were altered. Although still elastic and gel-like in nature, the elasticity and viscous behavior of the network as a function of microfibril concentration is altered. The microstructure is thus changed by changing the surface properties of the building blocks leading to a direct influence on the materials macroscopic behavior.
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Affiliation(s)
- Sandra J Veen
- Unilever R&D Vlaardingen, Olivier van Noortlaan 120, 3133 AT Vlaardingen, The Netherlands.
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19
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Yang J, Zhang X, Ma M, Xu F. Modulation of Assembly and Dynamics in Colloidal Hydrogels via Ionic Bridge from Cellulose Nanofibrils and Poly(ethylene glycol). ACS Macro Lett 2015; 4:829-833. [PMID: 35596504 DOI: 10.1021/acsmacrolett.5b00422] [Citation(s) in RCA: 30] [Impact Index Per Article: 3.0] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 12/12/2022]
Abstract
The biologically inspired dynamic materials offer principles for designing man-made systems by using assembly approach. In this work, the hybrid hydrogels consist of cellulose nanofibrils (CNFs) that combine a mechanically strong skeleton with flexible PEG chains. The distinct gel state is observed at room temperature with G' > G″ and an order of magnitude higher G' values from 0.08 to 0.93 kPa upon increasing CNF concentration from 0.2 to 2 wt % at constant 2 wt % PEG. Combined with mechanically strong CNFs and dynamic ionic bridges through amine-terminated tetra-arm PEG adsorption to TEMPO-oxidized colloidal nanofibrils surface, the assembled colloidal hydrogels show high modulus, reversible gel-sol transition, and rapid self-recovery properties. It is envisioned that simply mixing hard CNF and soft polymeric matrix would lead to a facile method to bridge reversible dynamic bonds in a cellulose-based hybrid network and broad cellulose applications in the preparation of high performance supramolecular systems.
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Affiliation(s)
- Jun Yang
- Beijing Key Laboratory of
Lignocellulosic Chemistry, Beijing Forestry University, Beijing, 100083, China
| | - Xueming Zhang
- Beijing Key Laboratory of
Lignocellulosic Chemistry, Beijing Forestry University, Beijing, 100083, China
| | - Mingguo Ma
- Beijing Key Laboratory of
Lignocellulosic Chemistry, Beijing Forestry University, Beijing, 100083, China
| | - Feng Xu
- Beijing Key Laboratory of
Lignocellulosic Chemistry, Beijing Forestry University, Beijing, 100083, China
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20
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Jowkarderis L, van de Ven TG. Rheology of semi-dilute suspensions of carboxylated cellulose nanofibrils. Carbohydr Polym 2015; 123:416-23. [DOI: 10.1016/j.carbpol.2015.01.067] [Citation(s) in RCA: 43] [Impact Index Per Article: 4.3] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 11/27/2014] [Revised: 01/28/2015] [Accepted: 01/30/2015] [Indexed: 11/26/2022]
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21
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Janeček ER, McKee JR, Tan CSY, Nykänen A, Kettunen M, Laine J, Ikkala O, Scherman OA. Hybrid supramolecular and colloidal hydrogels that bridge multiple length scales. Angew Chem Int Ed Engl 2015; 54:5383-8. [PMID: 25772264 PMCID: PMC4471571 DOI: 10.1002/anie.201410570] [Citation(s) in RCA: 71] [Impact Index Per Article: 7.1] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 10/29/2014] [Revised: 01/14/2015] [Indexed: 01/11/2023]
Abstract
Hybrid nanocomposites were constructed based on colloidal nanofibrillar hydrogels with interpenetrating supramolecular hydrogels, displaying enhanced rheological yield strain and a synergistic improvement in storage modulus. The supramolecular hydrogel consists of naphthyl-functionalized hydroxyethyl cellulose and a cationic polystyrene derivative decorated with methylviologen moieties, physically cross-linked with cucurbit[8]uril macrocyclic hosts. Fast exchange kinetics within the supramolecular system are enabled by reversible cross-linking through the binding of the naphthyl and viologen guests. The colloidal hydrogel consists of nanofibrillated cellulose that combines a mechanically strong nanofiber skeleton with a lateral fibrillar diameter of a few nanometers. The two networks interact through hydroxyethyl cellulose adsorption to the nanofibrillated cellulose surfaces. This work shows methods to bridge the length scales of molecular and colloidal hybrid hydrogels, resulting in synergy between reinforcement and dynamics.
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Affiliation(s)
- Emma-Rose Janeček
- Melville Laboratory for Polymer Synthesis, Department of ChemistryUniversity of Cambridge, Lensfield Road, Cambridge CB21EW (UK)
| | - Jason R McKee
- Molecular Materials, Department of Applied Physics, Aalto University (previously Helsinki University of Technology)P.O. Box 15100, FIN-00076, Espoo (Finland)
| | - Cindy S Y Tan
- Melville Laboratory for Polymer Synthesis, Department of ChemistryUniversity of Cambridge, Lensfield Road, Cambridge CB21EW (UK)
| | - Antti Nykänen
- Molecular Materials, Department of Applied Physics, Aalto University (previously Helsinki University of Technology)P.O. Box 15100, FIN-00076, Espoo (Finland)
| | - Marjo Kettunen
- Molecular Materials, Department of Applied Physics, Aalto University (previously Helsinki University of Technology)P.O. Box 15100, FIN-00076, Espoo (Finland)
| | - Janne Laine
- Department of Forest Products Technology, School of Chemical Technology, Aalto UniversityP.O. Box 16300, FIN-00076 Aalto (Finland)
| | - Olli Ikkala
- Molecular Materials, Department of Applied Physics, Aalto University (previously Helsinki University of Technology)P.O. Box 15100, FIN-00076, Espoo (Finland)
| | - Oren A Scherman
- Melville Laboratory for Polymer Synthesis, Department of ChemistryUniversity of Cambridge, Lensfield Road, Cambridge CB21EW (UK)
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22
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Janeček E, McKee JR, Tan CSY, Nykänen A, Kettunen M, Laine J, Ikkala O, Scherman OA. Hybrid Supramolecular and Colloidal Hydrogels that Bridge Multiple Length Scales. ANGEWANDTE CHEMIE (WEINHEIM AN DER BERGSTRASSE, GERMANY) 2015; 127:5473-5478. [PMID: 27478263 PMCID: PMC4955230 DOI: 10.1002/ange.201410570] [Citation(s) in RCA: 12] [Impact Index Per Article: 1.2] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Download PDF] [Figures] [Subscribe] [Scholar Register] [Received: 10/29/2014] [Revised: 01/14/2015] [Indexed: 11/30/2022]
Abstract
Hybrid nanocomposites were constructed based on colloidal nanofibrillar hydrogels with interpenetrating supramolecular hydrogels, displaying enhanced rheological yield strain and a synergistic improvement in storage modulus. The supramolecular hydrogel consists of naphthyl-functionalized hydroxyethyl cellulose and a cationic polystyrene derivative decorated with methylviologen moieties, physically cross-linked with cucurbit[8]uril macrocyclic hosts. Fast exchange kinetics within the supramolecular system are enabled by reversible cross-linking through the binding of the naphthyl and viologen guests. The colloidal hydrogel consists of nanofibrillated cellulose that combines a mechanically strong nanofiber skeleton with a lateral fibrillar diameter of a few nanometers. The two networks interact through hydroxyethyl cellulose adsorption to the nanofibrillated cellulose surfaces. This work shows methods to bridge the length scales of molecular and colloidal hybrid hydrogels, resulting in synergy between reinforcement and dynamics.
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Affiliation(s)
- Emma‐Rose Janeček
- Melville Laboratory for Polymer Synthesis, Department of Chemistry, University of Cambridge, Lensfield Road, Cambridge CB21EW (UK)
| | - Jason R. McKee
- Molecular Materials, Department of Applied Physics, Aalto University (previously Helsinki University of Technology), P.O. Box 15100, FIN‐00076, Espoo (Finland)
| | - Cindy S. Y. Tan
- Melville Laboratory for Polymer Synthesis, Department of Chemistry, University of Cambridge, Lensfield Road, Cambridge CB21EW (UK)
| | - Antti Nykänen
- Molecular Materials, Department of Applied Physics, Aalto University (previously Helsinki University of Technology), P.O. Box 15100, FIN‐00076, Espoo (Finland)
| | - Marjo Kettunen
- Molecular Materials, Department of Applied Physics, Aalto University (previously Helsinki University of Technology), P.O. Box 15100, FIN‐00076, Espoo (Finland)
| | - Janne Laine
- Department of Forest Products Technology, School of Chemical Technology, Aalto University, P.O. Box 16300, FIN‐00076 Aalto (Finland)
| | - Olli Ikkala
- Molecular Materials, Department of Applied Physics, Aalto University (previously Helsinki University of Technology), P.O. Box 15100, FIN‐00076, Espoo (Finland)
| | - Oren A. Scherman
- Melville Laboratory for Polymer Synthesis, Department of Chemistry, University of Cambridge, Lensfield Road, Cambridge CB21EW (UK)
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23
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Kuijk A, Koppert R, Versluis P, van Dalen G, Remijn C, Hazekamp J, Nijsse J, Velikov KP. Dispersions of attractive semiflexible fiberlike colloidal particles from bacterial cellulose microfibrils. LANGMUIR : THE ACS JOURNAL OF SURFACES AND COLLOIDS 2013; 29:14356-14360. [PMID: 24215548 DOI: 10.1021/la403397d] [Citation(s) in RCA: 14] [Impact Index Per Article: 1.2] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 06/02/2023]
Abstract
We prepared dispersions from bacterial cellulose microfibrils (CMF) of a commercial Nata de Coco source. We used an ultra-high-energy mechanical deagglomeration process that is able to disperse the CMFs from the pellicle in which they are organized in an irregular network. Because of the strong attractions between the CMFs, the dispersion remained highly heterogeneous, consisting of fiber bundles, flocs, and voids spanning tens to hundreds of micrometers depending on concentration. The size of these flocs increased with CMF concentration, the size of the bundles stayed constant, and the size of the voids decreased. The observed percolation threshold in MFC dispersions is lower than the theoretical prediction, which is accounted for by the attractive interactions in the system. Because bacterial cellulose is chemically very pure, it can be used to study the interaction of attractive and highly shape-anisotropic, semiflexible fiberlike colloidal particles.
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Affiliation(s)
- Anke Kuijk
- Unilever R&D Vlaardingen , Olivier van Noortlaan 120, 3133 AT Vlaardingen, The Netherlands
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24
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Chatterjee AP. Connectedness percolation in monodisperse rod systems: clustering effects. JOURNAL OF PHYSICS. CONDENSED MATTER : AN INSTITUTE OF PHYSICS JOURNAL 2011; 23:375101. [PMID: 21844645 DOI: 10.1088/0953-8984/23/37/375101] [Citation(s) in RCA: 5] [Impact Index Per Article: 0.4] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 05/31/2023]
Abstract
A model is presented that examines the impact of local clustering upon the percolation behaviour of interpenetrable rod-like particles. The percolation threshold, as well as percolation and backbone probabilities, are evaluated as functions of the particle aspect ratio and degree of clustering by way of an analogy to a lattice site percolation problem. The formation of local, physically connected cliques of particles is shown to raise the percolation threshold whilst reducing the percolation and backbone fractions for a fixed volume fraction of particles.
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Affiliation(s)
- Avik P Chatterjee
- Department of Chemistry, Edwin C Jahn Laboratory, SUNY-ESF, Syracuse, NY 13210, USA.
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25
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Klemm D, Kramer F, Moritz S, Lindström T, Ankerfors M, Gray D, Dorris A. Nanocelluloses: A New Family of Nature-Based Materials. Angew Chem Int Ed Engl 2011; 50:5438-66. [DOI: 10.1002/anie.201001273] [Citation(s) in RCA: 3043] [Impact Index Per Article: 217.4] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 03/02/2010] [Revised: 07/29/2010] [Indexed: 11/09/2022]
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26
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Klemm D, Kramer F, Moritz S, Lindström T, Ankerfors M, Gray D, Dorris A. Nanocellulosen: eine neue Familie naturbasierter Materialien. Angew Chem Int Ed Engl 2011. [DOI: 10.1002/ange.201001273] [Citation(s) in RCA: 84] [Impact Index Per Article: 6.0] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/11/2022]
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27
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Chatterjee AP. A simple model for characterizing non-uniform fibre-based composites and networks. JOURNAL OF PHYSICS. CONDENSED MATTER : AN INSTITUTE OF PHYSICS JOURNAL 2011; 23:155104. [PMID: 21436504 DOI: 10.1088/0953-8984/23/15/155104] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 05/30/2023]
Abstract
A mean-field model is presented that describes non-uniformities in the spatial distribution of fibres in networks and composites in terms of fluctuations in the local composition. The mean pore radius, specific surface area, lineal path function, and chord length probability density are expressed as functions of the fibre volume fraction within a heuristic formalism. The impact of statistical heterogeneities in the fibre distribution upon the elastic moduli is assessed within the semi-empirical Reuss-Voigt-Hill averaging scheme. Results from illustrative calculations suggest that such macroscopically averaged material properties are particularly sensitive to variations in the mean pore radius.
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Affiliation(s)
- Avik P Chatterjee
- Department of Chemistry, State University of New York, College of Environmental Science and Forestry, Syracuse, NY 13210, USA.
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28
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Prokhorova DA, Chatterjee AP. Elastic Moduli of Cellulose Nanoparticle-Reinforced Composites: A Micromechanical Model. Biomacromolecules 2009; 10:3259-65. [DOI: 10.1021/bm9008414] [Citation(s) in RCA: 12] [Impact Index Per Article: 0.8] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/30/2022]
Affiliation(s)
- Darya A. Prokhorova
- Department of Chemistry, 121 Edwin C. Jahn Laboratory, SUNY-ESF, One Forestry Drive, Syracuse, New York 13210
| | - Avik P. Chatterjee
- Department of Chemistry, 121 Edwin C. Jahn Laboratory, SUNY-ESF, One Forestry Drive, Syracuse, New York 13210
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