Original Paper
Uyanga, K. A., Li, W., & Daoud, W. A. (2024). Exploiting cellulose-based hydrogels for sustainable, intelligent wearables in pandemic preparedness and control. European Polymer Journal, 212, 113041.
10.1016/j.eurpolymj.2024.113041Qiao, H., Zhou, X., Yu, Z., You, J., Li, J., Zhang, Y., Gao, H., & Zhou, H. (2023). Rheological properties of partially dissolved cellulose composites: The effect of cellulose content and temperature. Cellulose, 30, 10701-10714.
10.1007/s10570-023-05525-wLu, C., Liu, Y., Wang, X., Yu, J., Xu, Y., Wang, C., Wang, J., Yong, Q., & Chu, F. (2022). Rigid, stretchable and full recyclable cellulose reinforced thermoset elastomer composites for photothermal conversion and Joule heating. European Polymer Journal, 181, 111710.
10.1016/j.eurpolymj.2022.111710Kim, T., Song, Y., Ahn, J., Kim, M., Ko, E., & Kim, H. (2021). Rheological interpretation of intermediate physical state of gel and liquid crystalline phases in cellulose solution and their synergetic effects on the mechanical property. Cellulose, 28, 10863-10874.
10.1007/s10570-021-04209-7Yuan, T., Zhang, Z., Liu, Q., Liu, X.-T., Miao, Y.-N., & Yao, C.-L. (2023). MXene (Ti3C2Tx)/cellulose nanofiber/polyaniline film as a highly conductive and flexible electrode material for supercapacitors. Carbohydrate Polymers, 304, 120519.
10.1016/j.carbpol.2022.120519Zhou, G., Wang, X., Wan, T., Liu, C., Chen, W., Jiang, S., Han, J., Yan, Y., Li, M., & Mei, C. (2022). Electrostatic self-assembly of Ti3C2Tx MXene/cellulose nanofiber composite films for wearable supercapacitor and joule heater. Energy & Environmental Materials, 6, e12454.
10.1002/eem2.12454Abdi, M., Zakeri-Milani, P., & Ghorbani, M. (2023). Designing and evaluating pH-responsive electrospun Eudragit® L-100/hydroxypropyl methyl cellulose composite mats for release of propolis as a novel wound dressing. Journal of Polymers and the Environment, 31, 3215-3229.
10.1007/s10924-023-02802-4Le, K.-T., Nguyen, C.-T., Lac, T.-D., Nguyen, L.-G. T., Tran, T. L., & Tran-Van, H. (2023). Facilely preparing carboxymethyl chitosan/hydroxyethyl cellulose hydrogel films for protective and sustained release of fibroblast growth factor 2 to accelerate dermal tissue repair. Journal of Drug Delivery Science and Technology, 82, 104318.
10.1016/j.jddst.2023.104318Wu, W., Lu, Z., Lu, C., Sun, X., Ni, B., Cölfen, H., & Xiong, R. (2023). Bioinspired stabilization of amorphous calcium carbonate by carboxylated nanocellulose enables mechanically robust, healable, and sensing biocomposites. ACS Nano, 17, 6664-6674.
10.1021/acsnano.2c1238536946540PMC10100558Xiong, L., He, H., Tang, J., Yang, Q., & Li, L. (2022). Self-assembly of cellulose nanocrystals and organic colored pigments as reinforcement matrix of lipstick for enhancing SPF. Oxidative Medicine and Cellular Longevity, 2022, e2422618.
10.1155/2022/242261835186182PMC8850073Sadeghifar, H., Venditti, R., Jur, J., Gorga, R. E., & Pawlak, J. J. (2017). Cellulose-lignin biodegradable and flexible UV protection film. ACS Sustainable Chemistry & Engineering, 5, 625-631.
10.1021/acssuschemeng.6b02003Qiu, C., Liu, H., Shen, K., Yuan, M., & Qi, H. (2022). Rational design of stable fluorescent and hydrophobic cellulose-based film for full-band UV-blocking. Cellulose, 29, 9719-9729.
10.1007/s10570-022-04853-7Wang, H.-M., Yuan, T.-Q., Song, G.-Y., & Sun, R.-C. (2021). Advanced and versatile lignin-derived biodegradable composite film materials toward a sustainable world. Green Chemistry, 23, 3790-3817.
10.1039/D1GC00790DRibca, I., Sochor, B., Betker, M., Roth, S. V., Lawoko, M., Sevastyanova, O., Meier, M. A. R., & Johansson, M. (2023). Impact of lignin source on the performance of thermoset resins. European Polymer Journal, 194, 112141.
10.1016/j.eurpolymj.2023.112141Ma, L., Zhu, Y., Huang, Y., Zhang, L., & Wang, Z. (2022). Strong water-resistant, UV-blocking cellulose/glucomannan/lignin composite films inspired by natural LCC bonds. Carbohydrate Polymers, 281, 119083.
10.1016/j.carbpol.2021.119083Shafiq, A., Bhatti, I. A., Amjed, N., Zeshan, M., Zaheer, A., Kamal, A., Naz, S., & Rasheed, T. (2024). Lignin derived polyurethanes: Current advances and future prospects in synthesis and applications. European Polymer Journal, 209, 112899.
10.1016/j.eurpolymj.2024.112899Henry, N., Harper, D., & Dadmun, M. (2012). Optimizing noncovalent interactions between lignin and synthetic polymers to develop effective compatibilizers. Macromolecular Chemistry and Physics, 213, 1196-1205.
10.1002/macp.201100633Al-shahrani, D., Love, S. A., & Salas-de la Cruz, D. (2018). The role of reduced graphene oxide toward the self-assembly of lignin-based biocomposites fabricated from ionic liquids. International Journal of Molecular Sciences, 19, 3518.
10.3390/ijms1911351830413099PMC6274873Liu, Y. (2018). Strong and flexible nanocomposites of carboxylated cellulose nanofibril dispersed by industrial lignin. ACS Sustainable Chemistry & Engineering, 6, 5524-5532.
10.1021/acssuschemeng.8b00402Ji, M., Li, J., Li, F., Wang, X., Man, J., Li, J., Zhang, C., & Peng, S. (2022). A biodegradable chitosan-based composite film reinforced by ramie fibre and lignin for food packaging. Carbohydrate Polymers, 281, 119078.
10.1016/j.carbpol.2021.119078Yang, J., Ching, Y. C., & Chuah, C. H. (2019). Applications of lignocellulosic fibers and lignin in bioplastics: A review. Polymers, 11, 751.
10.3390/polym1105075131035331PMC6572173Collins, M. N., Nechifor, M., Tanasă, F., Zănoagă, M., McLoughlin, A., Stróżyk, M. A., Culebras, M., & Teacă, C.-A. (2019). Valorization of lignin in polymer and composite systems for advanced engineering applications – A review. International Journal of Biological Macromolecules, 131, 828-849.
10.1016/j.ijbiomac.2019.03.069Wang, X., Xia, Q., Jing, S., Li, C., Chen, Q., Chen, B., Pang, Z., Jiang, B., Gan, W., Chen, G., Cui, M., Hu, L., & Li, T. (2021). Strong, hydrostable, and degradable straws based on cellulose-lignin reinforced composites. Small, 17, 2008011.
10.1002/smll.202008011Zhang, Y., Xu, A., Lu, B., Li, Z., & Wang, J. (2015). Dissolution of cellulose in 1-allyl-3-methylimizodalium carboxylates at room temperature: A structure–property relationship study. Carbohydrate Polymers, 117, 666-672.
10.1016/j.carbpol.2014.08.101Li, W.-Z., Ju, M.-T., Wang, Y.-N., Liu, L., & Jiang, Y. (2013). Separation and recovery of cellulose from Zoysia japonica by 1-allyl-3-methylimidazolium chloride. Carbohydrate Polymers, 92, 228-235.
10.1016/j.carbpol.2012.09.075Ji, W., Ding, Z., Liu, J., Song, Q., Xia, X., Gao, H., Wang, H., & Gu, W. (2012). Mechanism of lignin dissolution and regeneration in ionic liquid. Energy & Fuels, 26, 6393-6403.
10.1021/ef301231aGuiao, K. S., Tzoganakis, C., & Mekonnen, T. H. (2022). Green mechano-chemical processing of lignocellulosic biomass for lignin recovery. Chemosphere, 293, 133647.
10.1016/j.chemosphere.2022.133647Wu, R.-L., Wang, X.-L., Li, F., Li, H.-Z., & Wang, Y.-Z. (2009). Green composite films prepared from cellulose, starch and lignin in room-temperature ionic liquid. Bioresource Technology, 100, 2569-2574.
10.1016/j.biortech.2008.11.044Cui, B., Liu, L., Li, S., Wang, W., Tan, L., Liu, C., & Wang, W. (2023). Bio-inspired, UV-blocking, water-stable and antioxidant lignin/cellulose films combining high strength, toughness and flexibility. Materials Chemistry Frontiers, 7, 897-905.
10.1039/D2QM00842DMa, Y., Asaadi, S., Johansson, L.-S., Ahvenainen, P., Reza, M., Alekhina, M., Rautkari, L., Michud, A., Hauru, L., Hummel, M., & Sixta, H. (2015). High-strength composite fibers from cellulose–lignin blends regenerated from ionic liquid solution. ChemSusChem, 8, 4030-4039.
10.1002/cssc.201501094Gkartzou, E., Koumoulos, E. P., & Charitidis, C. A. (2017). Production and 3D printing processing of bio-based thermoplastic filament. Manufacturing Review, 4, 1.
10.1051/mfreview/2016020Zuo, X., Chang, K., Zhao, J., Xie, Z., Tang, H., Li, B., & Chang, Z. (2016). Bubble-template-assisted synthesis of hollow fullerene-like MoS2 nanocages as a lithium ion battery anode material. Journal of Materials Chemistry A, 4, 51-58.
10.1039/C5TA06869JJiang, Y., Liu, X., Yang, Q., Song, X., Qin, C., Wang, S., & Li, K. (2019). Effects of residual lignin on composition, structure and properties of mechanically defibrillated cellulose fibrils and films. Cellulose, 26, 1577-1593.
10.1007/s10570-018-02229-4Wasti, S., Triggs, E., Farag, R., Auad, M., Adhikari, S., Bajwa, D., Li, M., & Ragauskas, A. J. (2021). Influence of plasticizers on thermal and mechanical properties of biocomposite filaments made from lignin and polylactic acid for 3D printing. Composites Part B: Engineering, 205, 108483.
10.1016/j.compositesb.2020.108483Lu, X., Que, H., & Gu, X. (2022). Facile fabrication of lignin containing cellulose films using water as green solvent. European Polymer Journal, 168, 111097.
10.1016/j.eurpolymj.2022.111097Nada, A.-A. M. A., El-Sakhawy, M., & Kamel, S. M. (1998). Infra-red spectroscopic study of lignins. Polymer Degradation and Stability, 60, 247-251.
10.1016/S0141-3910(97)00072-4Wang, X., Wang, S., Liu, W., Wang, S., Zhang, L., Sang, R., Hou, Q., & Li, J. (2019). Facile fabrication of cellulose composite films with excellent UV resistance and antibacterial activity. Carbohydrate Polymers, 225, 115213.
10.1016/j.carbpol.2019.115213Hoareau, W., Trindade, W. G., Siegmund, B., Castellan, A., & Frollini, E. (2004). Sugar cane bagasse and curaua lignins oxidized by chlorine dioxide and reacted with furfuryl alcohol: Characterization and stability. Polymer Degradation and Stability, 86, 567-576.
10.1016/j.polymdegradstab.2004.07.005Maheswari, R. U., Mavukkandy, M. O., Adhikari, U., Naddeo, V., Sikder, J., & Arafat, H. A. (2020). Synergistic effect of humic acid on alkali pretreatment of sugarcane bagasse for the recovery of lignin with phenomenal properties. Biomass and Bioenergy, 134, 105486.
10.1016/j.biombioe.2020.105486Ghaffar, S. H., & Fan, M. (2013). Structural analysis for lignin characteristics in biomass straw. Biomass and Bioenergy, 57, 264-279.
10.1016/j.biombioe.2013.07.015Zhang, X., Liu, W., Yang, D., & Qiu, X. (2019). Biomimetic supertough and strong biodegradable polymeric materials with improved thermal properties and excellent UV-blocking performance. Advanced Functional Materials, 29, 1806912.
10.1002/adfm.201806912Gillet, S., Aguedo, M., Petitjean, L., Morais, A. R. C., da Costa Lopes, A. M., Łukasik, R. M., & Anastas, P. T. (2017). Lignin transformations for high value applications: Towards targeted modifications using green chemistry. Green Chemistry, 19, 4200-4233.
10.1039/C7GC01479AWang, Y., Liu, S., Wang, Q., Ji, X., Yang, G., Chen, J., & Fatehi, P. (2021). Strong, ductile and biodegradable polylactic acid/lignin-containing cellulose nanofibril composites with improved thermal and barrier properties. Industrial Crops and Products, 171, 113898.
10.1016/j.indcrop.2021.113898Mi, Q.-Y., Ma, S.-R., Yu, J., He, J.-S., & Zhang, J. (2016). Flexible and transparent cellulose aerogels with uniform nanoporous structure by a controlled regeneration process. ACS Sustainable Chemistry & Engineering, 4, 656-660.
10.1021/acssuschemeng.5b01079Bian, H., Gao, Y., Wang, R., Liu, Z., Wu, W., & Dai, H. (2018). Contribution of lignin to the surface structure and physical performance of cellulose nanofibrils film. Cellulose, 25, 1309-1318.
10.1007/s10570-018-1658-xNair, S. S., & Yan, N. (2015). Effect of high residual lignin on the thermal stability of nanofibrils and its enhanced mechanical performance in aqueous environments. Cellulose, 22, 3137-3150.
10.1007/s10570-015-0737-5- Publisher :Korea Technical Association of The Pulp and Paper Industry
- Publisher(Ko) :한국펄프종이공학회
- Journal Title :Journal of Korea TAPPI
- Journal Title(Ko) :펄프종이기술
- Volume : 58
- No :2
- Pages :39-51
- Received Date : 2026-01-05
- Revised Date : 2026-03-23
- Accepted Date : 2026-03-24
- DOI :https://doi.org/10.7584/JKTAPPI.2026.4.58.2.39


Journal of Korea TAPPI






