纤维素
纳米晶材料
甲壳素
过硫酸铵
化学工程
湿度
材料科学
振动器
水溶液
溶剂
纳米晶
超分子化学
制浆造纸工业
相对湿度
纳米纤维素
牙髓(牙)
纳米技术
化学
壳聚糖
有机化学
复合材料
聚合物
分子
振动
病理
量子力学
医学
工程类
聚合
物理
热力学
作者
Tony Jin,Tracy Liu,Faezeh Hajiali,Madison Santos,Yali Liu,Davis Kurdyla,Sophie Régnier,Sabahudin Hrapovich,Edmond Lam,Audrey Moores
标识
DOI:10.26434/chemrxiv-2022-jfvdk
摘要
To unlock nature’s potential for functional biomaterials, many efforts have been devoted to isolating the nanocrystalline domains within the supramolecular structure of polysaccharides. Yet, low reactivity and yield in aqueous systems along with excessive solvent usage hinders its development. In this report, the first solvent-free pathway to access carboxylated chitin and cellulose nanocrystals with excellent mass balance is described, relying on a new method coined high humidity shaker-aging. The method involves a mild grinding of the polysaccharide with ammonium persulfate followed by an aging phase under high humidity and on a shaker plate. Insights into the mechanism were uncovered, which highlighted the unique role of high humidity to afford a gradual uptake of water by the material up to deliquescence when the reaction is complete. This process was then validated for direct synthesis of nanocrystals from biomass sources including crab and soft wood pulp.
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