Ma Ning, Ji Xinyue, Lin Hanchen, Zhao Xinxu, Wang Fei, Meng Xianzhi, Pu Yunqiao, Ragauskas Arthur J, Huang Chen, You Chaoqun
Jiangsu Co-Innovation Centre of Efficient Processing and Utilization of Forest Resources, Jiangsu Key Lab for the Chemistry and Utilization of Agro-Forest Biomass, College of Chemical Engineering, Nanjing Forestry University, Nanjing 210037, PR China.
Department of Chemical and Biomolecular Engineering, University of Tennessee Knoxville, Knoxville, TN 37996, USA; Department of Forestry, Wildlife, and Fisheries, Center for Renewable Carbon, The University of Tennessee Institute of Agriculture, Knoxville, TN 37996, USA.
Int J Biol Macromol. 2025 Jul;318(Pt 2):144956. doi: 10.1016/j.ijbiomac.2025.144956. Epub 2025 Jun 4.
With the advancement of sustainable material innovations, renewable natural biopolymers are gradually replacing traditional metal and petroleum-based synthetic materials due to their environmental friendliness, biodegradability, and economic advantages. Lignin, the second most abundant natural aromatic polymer in the plant kingdom, has emerged as a key candidate raw material for the development of green polymer systems because of its unique phenylpropane unit network structure, high carbon content, and rich functional group characteristics. However, challenges such as the inherent structural complexity, chemical inertness, and uneven molecular weight distribution of lignin limit its direct application. By employing modification strategies such as chemical functionalization and physical regulation, researchers can precisely control its reactivity, thermal stability, and interfacial compatibility, enabling the preparation of high-performance lignin-based functional composites. This paper systematically reviews the principles and methodological advancements in lignin's multi-dimensional modification technology. It analyzes the mechanisms by which various chemical and physical modification techniques enhance the mechanical properties, functional responsiveness, and environmental adaptability of materials, and discusses innovative applications in fields such as intelligent packaging, biomedical materials, and energy storage devices. Furthermore, this review addresses the key challenges encountered in the high-value transformation of lignin, with the aim of offering a theoretical framework and technical pathway for the transformative development of lignin from agricultural and forestry by-products to functional material platforms.
随着可持续材料创新的推进,可再生天然生物聚合物因其环境友好性、生物可降解性和经济优势,正逐渐取代传统的金属和石油基合成材料。木质素是植物界中第二丰富的天然芳香聚合物,由于其独特的苯丙烷单元网络结构、高碳含量和丰富的官能团特性,已成为开发绿色聚合物体系的关键候选原料。然而,木质素固有的结构复杂性、化学惰性和分子量分布不均等挑战限制了其直接应用。通过采用化学功能化和物理调控等改性策略,研究人员可以精确控制其反应性、热稳定性和界面相容性,从而制备出高性能的木质素基功能复合材料。本文系统综述了木质素多维改性技术的原理和方法进展。分析了各种化学和物理改性技术增强材料机械性能、功能响应性和环境适应性的机制,并讨论了其在智能包装、生物医学材料和储能装置等领域的创新应用。此外,本综述还探讨了木质素高值化转化中遇到的关键挑战,旨在为木质素从农林副产品向功能材料平台的转型发展提供理论框架和技术途径。