Change search
Link to record
Permanent link

Direct link
Publications (5 of 5) Show all publications
Oliaei, E., Olsén, P., Lindström, T. S. C. & Berglund, L. A. (2022). Highly reinforced and degradable lignocellulose biocomposites by polymerization of new polyester oligomers. Nature Communications, 13(1), 5666
Open this publication in new window or tab >>Highly reinforced and degradable lignocellulose biocomposites by polymerization of new polyester oligomers
2022 (English)In: Nature Communications, E-ISSN 2041-1723, Vol. 13, no 1, p. 5666-Article in journal (Refereed) Published
Abstract [en]

Unbleached wood fibers and nanofibers are environmentally friendly bio-based candidates for material production, in particular, as reinforcements in polymer matrix biocomposites due to their low density and potential as carbon sink during the materials production phase. However, producing high reinforcement content biocomposites with degradable or chemically recyclable matrices is troublesome. Here, we address this issue with a new concept for facile and scalable in-situ polymerization of polyester matrices based on functionally balanced oligomers in pre-formed lignocellulosic networks. The idea enabled us to create high reinforcement biocomposites with well-dispersed mechanically undamaged fibers or nanocellulose. These degradable biocomposites have much higher mechanical properties than analogs in the literature. Reinforcement geometry (fibers at 30 µm or fibrils at 10-1000 nm diameter) influenced the polymerization and degradation of the polyester matrix. Overall, this work opens up new pathways toward environmentally benign materials in the context of a circular bioeconomy. © 2022. The Author(s).

Place, publisher, year, edition, pages
NLM (Medline), 2022
National Category
Chemical Sciences
Identifiers
urn:nbn:se:ri:diva-60820 (URN)10.1038/s41467-022-33283-z (DOI)2-s2.0-85138909148 (Scopus ID)
Available from: 2022-10-13 Created: 2022-10-13 Last updated: 2025-09-23Bibliographically approved
Seddiqi, H., Oliaei, E., Honarkar, H., Jin, J., Geonzon, L. C., Bacabac, R. G. & Klein-Nulend, J. (2021). Cellulose and its derivatives: towards biomedical applications. Cellulose, 28, 1893-1931
Open this publication in new window or tab >>Cellulose and its derivatives: towards biomedical applications
Show others...
2021 (English)In: Cellulose, ISSN 0969-0239, E-ISSN 1572-882X, Vol. 28, p. 1893-1931Article in journal (Refereed) Published
Abstract [en]

Cellulose is the most abundant polysaccharide on Earth. It can be obtained from a vast number of sources, e.g. cell walls of wood and plants, some species of bacteria, and algae, as well as tunicates, which are the only known cellulose-containing animals. This inherent abundance naturally paves the way for discovering new applications for this versatile material. This review provides an extensive survey on cellulose and its derivatives, their structural and biochemical properties, with an overview of applications in tissue engineering, wound dressing, and drug delivery systems. Based on the available means of selecting the physical features, dimensions, and shapes, cellulose exists in the morphological forms of fiber, microfibril/nanofibril, and micro/nanocrystalline cellulose. These different cellulosic particle types arise due to the inherent diversity among the source of organic materials or due to the specific conditions of biosynthesis and processing that determine the consequent geometry and dimension of cellulosic particles. These different cellulosic particles, as building blocks, produce materials of different microstructures and properties, which are needed for numerous biomedical applications. Despite having great potential for applications in various fields, the extensive use of cellulose has been mainly limited to industrial use, with less early interest towards the biomedical field. Therefore, this review highlights recent developments in the preparation methods of cellulose and its derivatives that create novel properties benefiting appropriate biomedical applications. © 2021, The Author(s).

Place, publisher, year, edition, pages
Springer Science and Business Media B.V., 2021
Keywords
Biomedical applications, Cellulose, Cellulose derivatives, Drug delivery, Tissue engineering, Wound dressing, Biochemistry, Medical applications, Biochemical properties, Biomedical fields, Drug delivery system, Microstructures and properties, Morphological forms, Organic materials, Preparation method, Wood
National Category
Natural Sciences
Identifiers
urn:nbn:se:ri:diva-52229 (URN)10.1007/s10570-020-03674-w (DOI)2-s2.0-85099926179 (Scopus ID)
Note

Funding details: China Scholarship Council, CSC, 201608530156; Funding details: 04310; Funding details: Japan Society for the Promotion of Science, KAKEN, 20K13819; Funding details: Stiftelsen för Miljöstrategisk Forskning, FID15-0115; Funding details: Philippine Council for Industry, Energy, and Emerging Technology Research and Development, PCIEERD; Funding text 1: Erfan Oliaei was supported by the Stiftelsen för Strategisk Forskning (Grant No. FID15-0115). The work of Jianfeng Jin was granted by the China Scholarship Council (CSC, No. 201608530156). Lester C. Geonzon was supported by the JSPS KAKENHI (Grant No. 20K13819). Rommel G. Bacabac was funded by the Philippine Council for Industry, Energy and Emerging Technology Research and Development – Department of Science and Technology project no. 04310, and received logistic support from the University of San Carlos Research Office and Department of Physics.

Available from: 2021-02-05 Created: 2021-02-05 Last updated: 2025-09-23Bibliographically approved
Berglund, L. A., Lindström, T. S. C., Oliaei, E. & Berthold, F. (2021). Eco-friendly high-strength composites based on hot-pressed lignocellulose microfibrils or fibers. ACS Sustainable Chemistry and Engineering, 9(4), 1899-1910
Open this publication in new window or tab >>Eco-friendly high-strength composites based on hot-pressed lignocellulose microfibrils or fibers
2021 (English)In: ACS Sustainable Chemistry and Engineering, E-ISSN 2168-0485, Vol. 9, no 4, p. 1899-1910Article in journal (Refereed) Published
Abstract [en]

Unbleached lignocellulosic wood fiber materials of low porosity are of great interest as eco-friendly load-bearing materials because their yield is much higher than that for “pure” wood cellulosics. The difference between comparable materials based on lignocellulose fibers or nanocellulose is investigated. The structure, surface area, mechanical properties, moisture sorption, and optical properties of films based on fibers or microfibrillated lignocellulose (MFLC) were characterized as a function of lignin content, and the environmental impact was compared. The modulus and tensile strength of comparable fiber and MFLC films (≈25% porosity) increased up to an optimum lignin content (11−17%) and then decreased at a very high lignin content. Hot-pressed MFLC films with little porosity showed excellent properties, 230−260 MPa strength, 17−20 GPa modulus, and 81 MPa wet strength. The mechanical property values of hot-pressed wood fibers with 25% porosity were also as high as 154 MPa strength and 13.2 GPa modulus, which are higher than those of comparable materials reported in the literature. Because hot-pressed lignocellulose fibers can be readily recycled and show low cumulative energy demand, they are candidates for semistructural engineering materials. MFLC is of great interest for coatings, films, adhesives, and as additives or in high-technology applications. 

Place, publisher, year, edition, pages
American Chemical Society, 2021
Keywords
Biocomposites, Mechanical properties, Microfibrillated cellulose, Moisture sorption, Nanocellulose, Recycling, Additives, Adhesives, Cellulose nanocrystals, Environmental impact, Environmental protection, Lignin, Lignocellulosic biomass, Optical properties, Porosity, Tensile strength, Wood products, Cumulative energy demands, Engineering materials, High-strength composites, High-technology applications, Lignin contents, Lignocellulosic woods, Load-bearing materials, Fibers
National Category
Natural Sciences
Identifiers
urn:nbn:se:ri:diva-52455 (URN)10.1021/acssuschemeng.0c08498 (DOI)2-s2.0-85100272056 (Scopus ID)
Note

Funding details: Stiftelsen för Strategisk Forskning, SSF; Funding text 1: We acknowledge funding from the Swedish Foundation for Strategic Research, the STFI association of interested parties, and Treesearch support. LAB acknowledges funding from the KAW Biocomposites program.

Available from: 2021-02-18 Created: 2021-02-18 Last updated: 2025-09-23Bibliographically approved
Oliaei, E., Lindström, T. & Berglund, L. A. (2021). Sustainable Development of Hot-Pressed All-Lignocellulose Composites—Comparing Wood Fibers and Nanofibers. Polymers, 13(16), Article ID 2747.
Open this publication in new window or tab >>Sustainable Development of Hot-Pressed All-Lignocellulose Composites—Comparing Wood Fibers and Nanofibers
2021 (English)In: Polymers, E-ISSN 2073-4360, Vol. 13, no 16, article id 2747Article in journal (Refereed) Published
Abstract [en]

Low-porosity materials based on hot-pressed wood fibers or nanocellulose fibrils (no polymer matrix) represent a new concept for eco-friendly materials with interesting mechanical properties. For the replacement of fossil-based materials, physical properties of wood fiber materials need to be improved. In addition, the carbon footprint and cumulative energy required to produce the material also needs to be reduced compared with fossil-based composites, e.g., glass fiber composites. Lignin-containing fibers and nanofibers are of high yield and special interest for development of more sustainable materials technologies. The present mini-review provides a short analysis of the potential. Different extraction routes of lignin-containing wood fibers are discussed, different processing methods, and the properties of resulting fiber materials. Comparisons are made with analogous lignin-containing nanofiber materials, where mechanical properties and eco-indicators are emphasized. Higher lignin content may promote eco-friendly attributes and improve interfiber or interfibril bonding in fiber materials, for improved mechanical performance.

Place, publisher, year, edition, pages
MDPI, 2021
Keywords
nanocellulose, nanofibrillar/microfibrillar lignocellulose, lignin-containing wood fibers, unbleached kraft pulp, molded fiber, biocomposite, mechanical properties, cumulative energy demand (CED), sustainability
National Category
Composite Science and Engineering
Identifiers
urn:nbn:se:ri:diva-56297 (URN)10.3390/polym13162747 (DOI)
Available from: 2021-09-02 Created: 2021-09-02 Last updated: 2025-09-23Bibliographically approved
Oliaei, E., Linden, P., Wu, Q., Berthold, F., Berglund, L. & Lindström, T. (2019). Microfibrillated lignocellulose (MFLC) and nanopaper films from unbleached kraft softwood pulp. Cellulose, 27, 2325-2341
Open this publication in new window or tab >>Microfibrillated lignocellulose (MFLC) and nanopaper films from unbleached kraft softwood pulp
Show others...
2019 (English)In: Cellulose, ISSN 0969-0239, E-ISSN 1572-882X, Vol. 27, p. 2325-2341Article in journal (Refereed) Published
Abstract [en]

Microfibrillated cellulose (MFC) is an important industrial nanocellulose product and material component. New MFC grades can widen the materials property range and improve product tailoring. Microfibrillated lignocellulose (MFLC) is investigated, with the hypothesis that there is an optimum in lignin content of unbleached wood pulp fibre with respect to nanofibril yield. A series of kraft fibres with falling Kappa numbers (lower lignin content) was prepared. Fibres were beaten and fibrillated into MFLC by high-pressure microfluidization. Nano-sized fractions of fibrils were separated using centrifugation. Lignin content and carbohydrate analysis, total charge, FE-SEM, TEM microscopy and suspension rheology characterization were carried out. Fibres with Kappa number 65 (11% lignin) combined high lignin content with ease of fibrillation. This confirms an optimum in nanofibril yield as a function of lignin content, and mechanisms are discussed. MFLC from these fibres contained a 40-60 wt% fraction of nano-sized fibrils with widths in the range of 2.5-70 nm. Despite the large size distribution, data for modulus and tensile strength of MFLC films with 11% lignin were as high as 14 GPa and 240 MPa. MFLC films showed improved water contact angle of 84-88 degrees, compared to neat MFC films (< 50 degrees). All MFLC films showed substantial optical transmittance, and the fraction of haze scattering strongly correlated with defect content in the form of coarse fibrils. [GRAPHICS]

Place, publisher, year, edition, pages
SPRINGER, 2019
National Category
Natural Sciences
Identifiers
urn:nbn:se:ri:diva-43307 (URN)10.1007/s10570-019-02934-8 (DOI)2-s2.0-85077400087 (Scopus ID)
Available from: 2020-01-23 Created: 2020-01-23 Last updated: 2025-09-23Bibliographically approved
Organisations
Identifiers
ORCID iD: ORCID iD iconorcid.org/0000-0002-2984-7702

Search in DiVA

Show all publications