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Application of cellulose and its processed products for the production of aerogels

https://doi.org/10.21266/2079-4304.2025.252.360-371

Abstract

Currently, the possibility of expanding the areas of application of cellulose is being actively investigated. Special attention is beginning to be paid to the products of cellulose destruction – powdered cellulose materials. The most common powdered cellulose materials are micro- and nanocelluloses. They have a number of unique characteristics that differ from cellulose, which leads to their use in such industries as construction, cosmetics, and pharmaceuticals. Powdered cellulose materials are considered as a material for flexible screens and 3D modeling. Along with this, there is growing interest in highly porous cellulose-based materials, in particular the production of aerogels from cellulose, recycled materials (waste paper) and cellulose destruction products (for example, microcrystalline cellulose). Cellulose aerogels belong to bioaerogels (the third class of aerogels) and represent a new category of sustainable and environmentally friendly materials. As part of this study, the possibility of obtaining aerogels from various cellulose materials was assessed. The structural and morphological characteristics and specific surface area of samples of powdered cellulose obtained by dry grinding in a planetary type ball mill with different durations were investigated. An aerogel was prepared and analyzed from samples of bleached softwood powdered cellulose. It is noted that such treatment does not allow developing the cellulose surface and obtaining an aerogel with the required characteristics. In order to improve the surface development of cellulose samples, they were subjected to sulfuric acid hydrolysis to release nanocellulose. The resulting nanocellulose samples were used to prepare aerogels. It was noted that nanocellulose-based aerogels have the necessary specific surface area and pore volume required for such materials.

About the Authors

E. A. Toptunov
Northern Arctic Federal University named after M.V. Lomonosov; RTC “Modern technologies of processing of North bioresources”
Russian Federation

TOPTUNOV Evgeniy A. – PhD student of the Department of Pulp, Paper and Wood Chemical Production, Northern Arctic Federal University named after M.V. Lomonosov, engineer of RTC “Modern technologies of processing of North bioresources” 

63002. Severnaya Dvina emb. 17. Arkhangelsk

ResearcherID: ABE-4069-2020 



Yu. V. Sevastyanova
Northern Arctic Federal University named after M.V. Lomonosov
Russian Federation

SEVASTYANOVA Yulia V. – PhD (Technical), Professor of the Department of Pulp, Paper and Wood Chemical Production 

163002. Severnaya Dvina emb. 17. Arkhangelsk



Yu. A. Sarasova
Northern Arctic Federal University named after M.V. Lomonosov
Russian Federation

SAVRASOVA Yulia A. – training master of the Department of Pulp, Paper and Wood Chemical Production 

163002. Severnaya Dvina emb. 17. Arkhangelsk



A. D. Ivakhnov
N. Laverov Federal Center for Integrated Arctic Research of the Ural Branch of the RAS
Russian Federation

IVAKHNOV Artem D. – PhD (Chemical), Senior Researcher 

163002. Severnaya Dvina emb. 17. Arkhangelsk 

 ResearcherID: U-4822-2019 



References

1. Al Abdallah H., Tannous J.H. Abu-Jdayil B. Cellulose and nanocellulose aerogels, their preparation methods, and potential applications: a review. Cellulose, 2024, vol. 31, pp. 2001–2029.

2. Abdel-Hakim A., Mourad R. Nanocellulose and its polymer composites: preparation, characterization, and applications. Russian Chemical Reviews, 2023, vol. 92, no. 4, art. no. RCR5076.

3. Adel A.M., El-Gendy A.A., Diab M.A., Abou-Zeid R.E., El-Zawawy W.K., Dufresne A. Microfibrillated cellulose from agricultural residues. Part I: Papermaking application. Industrial Crops and Products, 2016, vol. 93, pp. 161–174.

4. Autlov S.A., Bazarnova N.G., Kushnir E.Yu. Microcrystalline cellulose. Structure, properties and applications. Khimija Rastitel’nogo Syr’ja, 2013, no. 3, pp. 33–41. (In Russ)

5. Fedotova O.V., Trofimova K.V., Tsygankov P.Yu., Safarov R.R. Research of the influence of parameters for obtaining highly porous cellulosic materials on their structural characteristics. IVUZ. Khimiya i khim. tekhnologia, 2023, vol. 66, no. 2, pp. 107–113. (In Russ)

6. Dufresne A. Nanocellulose: a new ageless bionanomaterial. Materials Today, 2013, vol. 16, pр. 220–227.

7. Dunlop M.J., Acharya B., Bissessur R. Isolation of nanocrystalline cellulose from tunicates. Journal of Environmental Chemical Engineering, 2018, vol. 6, no. 4, pp. 4408–4412.

8. Lavoine N., Bergström L. Nanocellulose-based foams and aerogels: processing, properties, and applications. Journal of Materials Chemistry A, 2017, no. 5, pp. 16105–16117.

9. Long L.Y., Weng Y.X., Wang Y.Z. Cellulose aerogels: synthesis, applications, and prospects. Polymers, 2018, no. 8, pp. 1–28.

10. Rahmanian V., Pirzada T., Wang S., Khan S.A. Cellulose-based hybrid aerogels: strategies toward design and functionality. Advanced Materials, 2021, no. 33, pp. 1–26.

11. Toptunov E.A., Sevastyanova Yu.V. Powdered cellulosic materials: overview, classification, characteristics and fields of application. Khimija Rastitel’nogo Syr’ja, 2021, no. 4, pp. 31–45. (In Russ)


Review

For citations:


Toptunov E.A., Sevastyanova Yu.V., Sarasova Yu.A., Ivakhnov A.D. Application of cellulose and its processed products for the production of aerogels. Izvestia Sankt-Peterburgskoj lesotehniceskoj akademii. 2025;(252):360-371. (In Russ.) https://doi.org/10.21266/2079-4304.2025.252.360-371

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ISSN 2079-4304 (Print)
ISSN 2658-5871 (Online)