纤维素
水解
热稳定性
化学
纳米材料
酸水解
化学工程
聚合物
柠檬酸
纳米颗粒
生物相容性
绿色化学
碱性水解
有机化学
表面改性
产量(工程)
路易斯酸
乳酸
催化作用
材料科学
羧甲基纤维素
纳米晶
比表面积
碱金属
生物量(生态学)
作者
Junjie Zhou,Somia Yassin Hussain Abdalkarim,Xuefei Chen,Hou‐Yong Yu
标识
DOI:10.1021/acssuschemeng.5c08214
摘要
Cellulose nanocrystals (CNCs) stand out as promising biobased nanomaterials owing to their nanoscale dimensions, abundant surface groups, and excellent reinforcement capabilities in polymer composites. However, traditional preparation methods rely on harsh mineral acids, raising environmental and thermal stability concerns. In this work, a chloride/citric acid system of ZnCl2 or FeCl3 with citric acid (CA) was employed as a comparative platform to investigate the distinct roles of acid-catalyzed and oxidative hydrolysis in the preparation of carboxylated CNCs under mild conditions. The contrasting Lewis acidity and oxidative behavior of ZnCl2 and FeCl3 enabled mechanistic insights into their hydrolytic pathways, while alkaline pretreatment of cellulose further amplified these differences. Carboxylated CNCs produced with ZnCl2 exhibited markedly better thermal stability. Mild alkaline pretreatment was further introduced to improve molecular accessibility, significantly enhancing surface carboxylation. Carboxylated CNCs prepared via the ZnCl2/CA system with alkaline pretreatment demonstrated excellent thermal stability (Tmax = 375.0 °C), substantial carboxyl content (1.3 mmol/g), and exceptional yield (89.2%). The generality of this method was validated across multiple cellulose sources, highlighting its potential as a sustainable and efficient alternative to conventional acid hydrolysis for CNCs preparation.
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