Characterization of Hydrochloric Acid Hydrolysis to Sawdust Waste for Nanocellulose Extraction
Authors
Faculty of Industrial and Manufacturing Technology and Engineering, Universiti Teknikal Malaysia Melaka, Hang Tuah Jaya, 76100 Durian Tunggal, Melaka, Malaysia (Malaysia)
Innovative Ecographe Sdn. Bhd., Jalan Platinum 5/2, Pusat Perdagangan Nilai Impian, 71800, Negeri Sembilan, Malaysia (Malaysia)
Faculty of Industrial and Manufacturing Technology and Engineering, Universiti Teknikal Malaysia Melaka, Hang Tuah Jaya, 76100 Durian Tunggal, Melaka, Malaysia (Malaysia)
Article Information
DOI: 10.47772/IJRISS.2026.100800449
Subject Category: Education
Volume/Issue: 10/8 | Page No: 7022-7032
Publication Timeline
Submitted: 2026-08-20
Accepted: 2026-08-25
Published: 2026-09-08
Abstract
Sawdust waste (SDW) has emerged as a promising, sustainable source of nanocellulose due to its high
cellulose content. Despite its potential, research into the optimization of hydrochloric acid (HCl) hydrolysis
for SDW-derived nanocellulose remains a gap in the field. This findings investigates the impact of specific
concentration of HCL (60–65 wt%) and specific duration of hydrolysis (30–60 minutes) on the structural
properties of cellulose nanocrystals (CNCs) at a constant temperature of 45 °C. The objective was to identify
the optimal conditions to maximize crystallinity index and refine crystallite size, thereby enhancing the
functional performance of the resulting material. Analytical results demonstrate that HCl hydrolysis is an
effective method for isolating CNCs with notable thermal stability and high yields. The findings shows that an
acid concentration of 65 wt% synthesised with a 60-minute hydrolysis duration yields the most reliable
outcomes, achieving a crystallinity index of 71% and a crystallite size of 2.77 nm. This study provides a critical
framework for future scalable production of high-quality nanocellulose from lignocellulosic waste. These
results underscore the viability of SDW as an eco-friendly precursor, supporting global efforts to advance
sustainable material design and development.
Keywords
Sawdust waste, Nanocellulose, Acid hydrolysis, Hydrochloric acid, Crystallinity index, Sustainable materials
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References
1. Popescu, C., Dissanayake, H., Mansi, E., Stancu, A. (2024). Eco Breakthroughs: Sustainable Materials Transforming the Future of Our Planet. Sustainability, 16 (23), 10790. doi.org/10.3390/su162310790 [Google Scholar] [Crossref]
2. Jose, S. A., et. al. (2025). A Comprehensive Review on Cellulose Nanofibers, Nanomaterials, and Composites: Manufacturing, Properties, and Applications. Nanomaterials, 15 (5), 356, doi: [Google Scholar] [Crossref]
3. 3390/nano15050356 [Google Scholar] [Crossref]
4. Rajinipriya, M., Nagalakshmaiah, M., Robert, M., Elkoun, S. (2018). Importance of Agricultural and Industrial Waste in the Field of Nanocellulose and Recent Industrial Developments of Wood Based Nanocellulose: A Review. ACS Sustainable Chem. Eng, 6 (3), 2807–2828, doi: [Google Scholar] [Crossref]
5. 1021/acssuschemeng.7b03437 [Google Scholar] [Crossref]
6. Abdulraheem A. (2022). Impact of HCl Acidizing Treatment on Mechanical Integrity of Carbonaceous Shale. ACS Omega, 7 (16), 13629-13643, doi: 10.1021/acsomega.1c07175 [Google Scholar] [Crossref]
7. Ajali, N. A., Nasoha, N. Z., Luthfi, A. A. I., Salleh, M. Z. M., Manaf, S. F. A. (2023). Delignification of meranti wood sawdust for sustainable yeast cell immobilization. AIP Conf. Proc, 2847 (1), 030005, doi: 10.1063/5.0165256 [Google Scholar] [Crossref]
8. Kröger, M., Badara, O., Pääkkönen, T., Schlapp-Hackl, I., Hietala, S., Kontturi, E. (2023). Efficient Isolation Method for Highly Charged Phosphorylated Cellulose Nanocrystals. Biomacromolecules, 24 (3), 1318–1328, doi: 10.1021/acs.biomac.2c01363 [Google Scholar] [Crossref]
9. Neudecker, N., Jakob, M., Bodner, S. C., Keckes, J., Buerstmayr, H., Gindl-Altmutter, W. (2023). Delignification and Densification as a Route to Enable the Use of Wheat Straw for Structural Materials. ACS Sustainable Chem. Eng, 11 (19): 7596–7604, doi: 10.1021/acssuschemeng.3c01375 [Google Scholar] [Crossref]
10. Costa, C., Viana, A., Silva, C., Marques, E. F., Azoia, N.G. (2022). Recycling of textile wastes, by acid hydrolysis, into new cellulosic raw materials. Waste management, 153, 99-109, doi: [Google Scholar] [Crossref]
11. 1016/j.wasman.2022.08.019 [Google Scholar] [Crossref]
12. Heu, R., Shahbazmohamadi, S., Yorston, J., Capeder, P. (2019). Target Material Selection for Sputter Coating of SEM Samples, Microscopy Today, 27 (4), 32–36, doi: 10.1017/S1551929519000610 [Google Scholar] [Crossref]
13. Owonubi, S.J., Agwuncha, S. C., Malima, N. M., Shombe, G. B., Makhatha, E. M., Revaprasadu, N. (2021). Non-woody Biomass as Sources of Nanocellulose Particles: A Review of Extraction Procedures. Front. Energy Res. 9, 608825, doi: 10.3389/fenrg.2021.608825 [Google Scholar] [Crossref]
14. Shahril, S. M. et, al. (2022). Alkali treatment influence on cellulosic fiber from Furcraea foetida leaves as potential reinforcement of polymeric composites. Journal of Materials Research and Technology, 19, 2567-2583, doi: 10.1016/j.jmrt.2022.06.002 [Google Scholar] [Crossref]
15. Lehto, J., Louhelainen, J., Kłosińska, T. et al. (2018). Characterization of alkali-extracted wood by FTIR-ATR spectroscopy. Biomass Conv. Bioref, 8, 847–855, doi: 10.1007/s13399-018-0327-5 [Google Scholar] [Crossref]
16. Borchani, K.E., Carrot, C., Jaziri, M. (2015). Untreated and alkali treated fibers from Alfa stem: effect of alkali treatment on structural, morphological and thermal features. Cellulose, 22, 1577–1589, doi: 10.1007/s10570-015-0583-5 [Google Scholar] [Crossref]
17. Md Salim, R., Asik, J., Sarjadi, M.S. (2021). Chemical functional groups of extractives, cellulose and lignin extracted from native Leucaena leucocephala bark. Wood Sci Technol, 55, 295–313, doi: 10.1007/s00226-020-01258-2 [Google Scholar] [Crossref]
18. Verma, C., Chhajed, M., Gupta, P., Roy, S., Maji, P. K. (2021). Isolation of cellulose nanocrystals from different waste bio-mass collating their liquid crystal ordering with morphological exploration. International Journal of Biological Macromolecules, 175, 242-253, doi: [Google Scholar] [Crossref]
19. 1016/j.ijbiomac.2021.02.038 [Google Scholar] [Crossref]
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