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Abstract
Phenolic synthetic tanning agents (syntans) are widely used in the leather industry due to their controllable properties and consistent performance. This study aims to investigate the effect of phenol– formaldehyde molar ratio on the physicochemical properties of syntans synthesized via sulfonation. The syntans were prepared using various molar ratios (0:1, 0.5:1, 1:1, 1.5:1, 1:0.5, and 1:0) through
condensation followed by sulfonation. The products were characterized in terms of pH, specific gravity, viscosity, degree of sulfonation (DS), and functional groups using FTIR spectroscopy. The results show that increasing phenol or formaldehyde concentration led to higher specific gravity and viscosity, indicating increased polymerization. The pH values ranged around ~4, confirming suitability for leather processing. The DS decreased with increasing phenol or formaldehyde concentration, suggesting competition between polymerization and sulfonation reactions. The optimal molar ratio (1:1) produced the most homogeneous and stable syntan system. The pH values of all syntans were consistently around ~4, indicating suitability for leather processing. Increasing phenol or formaldehyde concentration resulted in higher viscosity and specific gravity, while the degree of sulfonation decreased significantly, confirming the trade-off between polymerization and sulfonation reactions. In conclusion, the phenol–formaldehyde molar ratio significantly influences syntan properties by controlling the balance between polymerization and sulfonation. These findings provide a scientific basis for optimizing syntan formulation and improving efficiency in sustainable leather processing.
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Copyright (c) 2026 Wahyu Fajar Winata, Prasetyo Hermawan, Elis Nurbalia

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References
- Ammenn, J., Huebsch, C., Illing, E. S., & Dannheim, B. (2015). Chemistry of syntans and their influence on leather quality. Journal of the American Leather Chemists Association, 110, 1–10.
- Bienkiewicz, K. (1983). Physical chemistry of leather making. Robert E. Krieger Publishing Company.
- Covington, A. D. (2009). Tanning chemistry: The science of leather. Royal Society of Chemistry.
- Cowd, M. A. (1982). Kimia polimer. ITB Press.
- Lusiana, R. A., Saputry, A. P., & Prasetya, B. A. (2019). Pengaruh sulfonasi terhadap karakteristik fisiko-kimia membran polisulfon. Jurnal MIPA, 42(1), 35–42.
- Muppa, R. P., Wijland, M., Berends, P., & Özcan, K. (2020). Phenolic monomers in aromatic syntans and their influence on leather properties. Smit & Zoon.
- Sarkar, K. T. (1995). Theory and practice of leather manufacture (5th ed.). CLS Press.
- Steven, M. R. (2001). Kimia polimer. Pradnya Paramita.
- Sun, Q., Zeng, Y., Wang, Y., Yu, Y., & Shi, B. (2021). A deeper exploration of the relation between sulfonation degree and retanning performance of aromatic syntans. Journal of Leather Science and Engineering, 3, 31. https://doi.org/10.1186/s42825-021-00073-0.
- Kamarudin, N., Awang Biak, D.R., Zainal Abidin, Z., Cardona, F., & Sapuan, S.M. (2020). Rheological study of phenol formaldehyde resole resin synthesized for laminate application. Materials, 13(11), 2578.
- Sun, Q., Zeng, Y., Wang, Y., Yu, Y., & Shi, B. (2021). A deeper exploration of the relation between sulfonation degree and retanning performance of aromatic syntans. Journal of Leather Science and Engineering, 3, 31.
- Mangun, C.L., et al. (2002). Sulfonation of pyropolymeric fibers derived from phenol-formaldehyde resins. Carbon, 40(13), 2323–2332.
- Coates, J. (2000). Interpretation of Infrared Spectra, A Practical Approach. In Encyclopedia of Analytical Chemistry. John Wiley & Sons.
- Faix, O. (1992). Fourier Transform Infrared Spectroscopy in Wood Chemistry, Wood Physics and Wood Biotechnology. Holzforschung, 46(3), 21–27.
- Finar, I. L. (1975). Organic Chemistry, Volume 2: Stereochemistry and the Chemistry of Natural Products (5th ed.). Longman.
- Heidemann, E. (1970). The Chemistry of Tanning Materials. Academic Press.
- Pavia, D. L., Lampman, G. M., Kriz, G. S., & Vyvyan, J. R. (2015). Introduction to Spectroscopy (5th ed.). Cengage Learning.
- Silverstein, R. M., Webster, F. X., & Kiemle, D. J. (2014). Spectrometric Identification of Organic Compounds (8th ed.). John Wiley & Sons.
- Socrates, G. (2001). Infrared and Raman Characteristic Group Frequencies: Tables and Charts (3rd ed.). John Wiley & Sons.
- Canappa, F., & Henze, A. (1985). Syntans in Leather Manufacture. Journal of the Society of Leather Technologists and Chemists, 69(4), 123–130.
- Dorieh, A., Ayrilmis, N., Pour, M. F., Movahed, S. G., Kiamahalleh, M. V., Shahavi, M. H., Hatefnia, H., & Mehdinia, M. (2022). Phenol–formaldehyde resin modified by cellulose and lignin nanomaterials: Review and recent progress. International Journal of Biological Macromolecules, 222, 1888–1907. https://doi.org/10.1016/j.ijbiomac.2022.09.279
- Sun, Q., Zeng, Y., Wang, Y., Yu, Y., & Shi, B. (2021). A deeper exploration of the relation between sulfonation degree and retanning performance of aromatic syntans. Journal of Leather Science and Engineering, 3, 31. https://doi.org/10.1186/s42825-021-00073-0
- Cardona, F., & Moscou, A. (Year). Synthesis and characterization of modified phenolic resins. (Source/Journal information not fully available). Retrieved from https://www.semanticscholar.org/paper/Synthesis-and-characterization-of-modified-Phenolic-Cardona-Moscou/7a3da05518c12e7bed33f19bb260b52b39168338
- Inbasekar, C., & Fathima, N. N. (2025). Current trends in modern tanning and multifunctional post-tanning as a new age tool for sustainable leather processing. Environmental Science and Pollution Research, 32, 26021–26039. https://doi.org/10.1007/s11356-025-37112-w
References
Ammenn, J., Huebsch, C., Illing, E. S., & Dannheim, B. (2015). Chemistry of syntans and their influence on leather quality. Journal of the American Leather Chemists Association, 110, 1–10.
Bienkiewicz, K. (1983). Physical chemistry of leather making. Robert E. Krieger Publishing Company.
Covington, A. D. (2009). Tanning chemistry: The science of leather. Royal Society of Chemistry.
Cowd, M. A. (1982). Kimia polimer. ITB Press.
Lusiana, R. A., Saputry, A. P., & Prasetya, B. A. (2019). Pengaruh sulfonasi terhadap karakteristik fisiko-kimia membran polisulfon. Jurnal MIPA, 42(1), 35–42.
Muppa, R. P., Wijland, M., Berends, P., & Özcan, K. (2020). Phenolic monomers in aromatic syntans and their influence on leather properties. Smit & Zoon.
Sarkar, K. T. (1995). Theory and practice of leather manufacture (5th ed.). CLS Press.
Steven, M. R. (2001). Kimia polimer. Pradnya Paramita.
Sun, Q., Zeng, Y., Wang, Y., Yu, Y., & Shi, B. (2021). A deeper exploration of the relation between sulfonation degree and retanning performance of aromatic syntans. Journal of Leather Science and Engineering, 3, 31. https://doi.org/10.1186/s42825-021-00073-0.
Kamarudin, N., Awang Biak, D.R., Zainal Abidin, Z., Cardona, F., & Sapuan, S.M. (2020). Rheological study of phenol formaldehyde resole resin synthesized for laminate application. Materials, 13(11), 2578.
Sun, Q., Zeng, Y., Wang, Y., Yu, Y., & Shi, B. (2021). A deeper exploration of the relation between sulfonation degree and retanning performance of aromatic syntans. Journal of Leather Science and Engineering, 3, 31.
Mangun, C.L., et al. (2002). Sulfonation of pyropolymeric fibers derived from phenol-formaldehyde resins. Carbon, 40(13), 2323–2332.
Coates, J. (2000). Interpretation of Infrared Spectra, A Practical Approach. In Encyclopedia of Analytical Chemistry. John Wiley & Sons.
Faix, O. (1992). Fourier Transform Infrared Spectroscopy in Wood Chemistry, Wood Physics and Wood Biotechnology. Holzforschung, 46(3), 21–27.
Finar, I. L. (1975). Organic Chemistry, Volume 2: Stereochemistry and the Chemistry of Natural Products (5th ed.). Longman.
Heidemann, E. (1970). The Chemistry of Tanning Materials. Academic Press.
Pavia, D. L., Lampman, G. M., Kriz, G. S., & Vyvyan, J. R. (2015). Introduction to Spectroscopy (5th ed.). Cengage Learning.
Silverstein, R. M., Webster, F. X., & Kiemle, D. J. (2014). Spectrometric Identification of Organic Compounds (8th ed.). John Wiley & Sons.
Socrates, G. (2001). Infrared and Raman Characteristic Group Frequencies: Tables and Charts (3rd ed.). John Wiley & Sons.
Canappa, F., & Henze, A. (1985). Syntans in Leather Manufacture. Journal of the Society of Leather Technologists and Chemists, 69(4), 123–130.
Dorieh, A., Ayrilmis, N., Pour, M. F., Movahed, S. G., Kiamahalleh, M. V., Shahavi, M. H., Hatefnia, H., & Mehdinia, M. (2022). Phenol–formaldehyde resin modified by cellulose and lignin nanomaterials: Review and recent progress. International Journal of Biological Macromolecules, 222, 1888–1907. https://doi.org/10.1016/j.ijbiomac.2022.09.279
Sun, Q., Zeng, Y., Wang, Y., Yu, Y., & Shi, B. (2021). A deeper exploration of the relation between sulfonation degree and retanning performance of aromatic syntans. Journal of Leather Science and Engineering, 3, 31. https://doi.org/10.1186/s42825-021-00073-0
Cardona, F., & Moscou, A. (Year). Synthesis and characterization of modified phenolic resins. (Source/Journal information not fully available). Retrieved from https://www.semanticscholar.org/paper/Synthesis-and-characterization-of-modified-Phenolic-Cardona-Moscou/7a3da05518c12e7bed33f19bb260b52b39168338
Inbasekar, C., & Fathima, N. N. (2025). Current trends in modern tanning and multifunctional post-tanning as a new age tool for sustainable leather processing. Environmental Science and Pollution Research, 32, 26021–26039. https://doi.org/10.1007/s11356-025-37112-w