材料科学
纤维素
制作
韧性
结晶度
深共晶溶剂
共晶体系
极限抗拉强度
生物量(生态学)
聚合
农业
溶剂
化学工程
纳米技术
可再生能源
可再生资源
过程(计算)
萃取(化学)
工作(物理)
原材料
复合材料
纤维素纤维
制浆造纸工业
可扩展性
聚合物
可持续发展
工艺工程
作者
Qi Tang,Mingjuan Du,Yefei Wang,Shanshan Ding,Junyi Cai,Xiaoshuang Lv,Fang Wang,Ziao Xu,Jianyong Yu,Bin Ding,Zhaoling Li
摘要
ABSTRACT High‐value utilization of renewable biomass resources is of great significance for achieving ecological and societal sustainability. It remains highly desirable to convert agricultural residues into high‐performance regenerated cellulose fibers in a green and scalable manner. However, the fabrication of superior agricultural regenerated fibers is demanding due to the inherent anti‐depolymerization structure and low degree of polymerization of agricultural cellulose. Here, we demonstrated a recyclable and eco‐efficient process enabling the selective extraction of cellulose from agricultural residues using a novel acid deep eutectic solvent system, and proposed a stretch‐induced alignment and spatial confinement strategy to realize scalable fabrication of high‐strength and high‐toughness regenerated fibers. The deep eutectic solvent presented efficient delignification and tailoring capacity for agricultural residue, yielding cellulose with a high purity of 91.2% and a crystallinity of 72.6%. The resultant fibers addressed the intrinsic limitations of agricultural cellulose through the formation of aligned nanofibril structures and densified hydrogen‐bonding networks, exhibiting a tensile strength of 852 MPa and a toughness of 110 MJ m −3 . This work establishes a foundational pathway for producing high‐performance bio‐based fibers derived from agricultural residues, advancing sustainable materials innovation and circular bioeconomy development.
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