TY - JOUR
T1 - High-strength biomass-based hydrogels
T2 - mechanisms, applications and perspectives
AU - Li, Yi
AU - Yang, Mingjin
AU - Jiang, Shaohua
AU - Duan, Gaigai
AU - He, Bin
AU - Huang, Yong
AU - Liang, Zhao
AU - Han, Xiaoshuai
AU - Zhang, Qilu
AU - He, Shuijian
AU - Ma, Chunxin
N1 - Publisher Copyright:
This journal is © The Royal Society of Chemistry, 2026
PY - 2026/4/14
Y1 - 2026/4/14
N2 - Biomass-based hydrogels have become an important research direction for green functional materials due to their advantages of abundant resources and good biocompatibility. Although the mechanical properties of traditional biomass hydrogels are relatively weak, limiting their wide application, in recent years, researchers have significantly enhanced their strength and toughness through molecular design, cross-linking network construction, and multi-scale structure regulation. Herein, we systematically review the structural characteristics of natural polymers such as polysaccharides, lignin and proteins as well as the strategies for constructing high-strength hydrogels. We focus on analyzing the influence of covalent and non-covalent interactions, multiple cross-linking mechanisms and network structure design on their performance. In addition, the typical applications of high-strength biomass-based hydrogels in fields such as biomedicine, environmental governance, and flexible electronics and sensors are highlighted, demonstrating their multi-functionality and practical potential. Finally, in response to the current technical challenges and bottlenecks, an idea is proposed for promoting the innovative development of the performance and functions of biomass-based hydrogels in the future through intelligent manufacturing and fine interface control. This article provides systematic references and guidance for researchers in related fields, facilitating the development of green high-performance functional materials.
AB - Biomass-based hydrogels have become an important research direction for green functional materials due to their advantages of abundant resources and good biocompatibility. Although the mechanical properties of traditional biomass hydrogels are relatively weak, limiting their wide application, in recent years, researchers have significantly enhanced their strength and toughness through molecular design, cross-linking network construction, and multi-scale structure regulation. Herein, we systematically review the structural characteristics of natural polymers such as polysaccharides, lignin and proteins as well as the strategies for constructing high-strength hydrogels. We focus on analyzing the influence of covalent and non-covalent interactions, multiple cross-linking mechanisms and network structure design on their performance. In addition, the typical applications of high-strength biomass-based hydrogels in fields such as biomedicine, environmental governance, and flexible electronics and sensors are highlighted, demonstrating their multi-functionality and practical potential. Finally, in response to the current technical challenges and bottlenecks, an idea is proposed for promoting the innovative development of the performance and functions of biomass-based hydrogels in the future through intelligent manufacturing and fine interface control. This article provides systematic references and guidance for researchers in related fields, facilitating the development of green high-performance functional materials.
UR - https://www.scopus.com/pages/publications/105033397118
U2 - 10.1039/d5gc06582h
DO - 10.1039/d5gc06582h
M3 - 文献综述
AN - SCOPUS:105033397118
SN - 1463-9262
VL - 28
SP - 6112
EP - 6151
JO - Green Chemistry
JF - Green Chemistry
IS - 14
ER -