纤维素
木质素
原材料
分馏
生物量(生态学)
制浆造纸工业
牙髓(牙)
木质纤维素生物量
化学
升级
材料科学
环氧化物
生物炼制
共价键
有机化学
化学工程
水解
细菌纤维素
聚合物
环氧树脂
残余物
解聚
化学改性
生物塑料
废物管理
高分子科学
作者
Shida Zuo,Lars William Schick,Suthawan Muangmeesri,Saranya Chitsomkhuan,Lenny Haddad,Joseph S. M. Samec
标识
DOI:10.1038/s41467-026-77206-8
摘要
Future biorefineries must upgrade all constituents of lignocellulosic feedstocks to high-value products. To curb land-use pressure, technologies that upgrade existing side-streams from forestry and agriculture into substitutes for high-impact, fossil-derived materials are urgently needed. Prevailing biomass valorization typically prioritizes either cellulose pulp or lignin; true co-valorization remains uncommon. Here we report a metal-free, ambient-pressure reactive fractionation that concurrently yields high-quality cellulose and a functionalized lignin. The isolated lignin is etherified and subsequently covalently coupled to cellulose via epoxide ring-opening, producing a composite. The materials display mechanical performance equivalent to common packaging materials, with retention under wet conditions, overcoming the intrinsic limitations of hydrogen-bonded cellulose networks. By integrating mild fractionation with chemical upgrading, this strategy simplifies processing, broadens the product slate accessible from residual biomass side streams and advances the substitution of problematic packaging materials. These findings establish a scalable route to whole-biomass co-valorization and wet-tolerant bio-based packaging from residual streams.
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