化学
木质素
纤维素
半纤维素
溶剂
有机化学
溶解度
聚合物
硫酸盐法
表征(材料科学)
核磁共振波谱
解聚
原材料
牛皮纸
化学工程
离子键合
水溶液
离子液体
碳-13核磁共振
绿色化学
牙髓(牙)
化学计量学
化学结构
定量分析(化学)
作者
Himani Negi,Yuki Tokunaga,Kengo Shigetomi,Shiori Suzuki
标识
DOI:10.1021/acs.analchem.5c07649
摘要
Lignin is the most abundant aromatic polymer in nature, occurring alongside cellulose and hemicellulose in wood and grass. Technical lignins, such as kraft lignin (KL) and lignosulfonate (LS), are produced globally in large quantities as byproducts of the pulp and paper industries. Hence, they represent promising renewable resources, and their valorization and widespread application are in high demand. However, their complex and heterogeneous chemical structures with various physicochemical properties hinder their widespread use. In this context, the accurate identification and quantification of their functional groups, such as hydroxy (OH) and carboxy (COOH) groups, are essential for reliable characterization and subsequent applications. 31P nuclear magnetic resonance (NMR) spectroscopy after lignin phosphitylation is the most commonly employed technique for this purpose. However, the conventional CDCl3/pyridine (pyr) (1:1.6, v/v) mixed solvent system is suitable for KL but not for LS due to their solubility differences, requiring time-consuming pretreatment steps to convert LS into the corresponding lignosulfonic acid and alter its solubility. Herein, we propose a facile and versatile 31P NMR analysis method using a new solvent system based on an ionic liquid, 1-allyl-3-methylimidazolium chloride, and pyr (2:1, w/v). The accuracy of this method was validated using lignin–OH/COOH model compounds and benchmarked against conventional solvent systems. Importantly, this approach enables systematic and quantitative analysis of the functionality of various technical lignins, including KL and LS, without the need for ion-exchange or purification pretreatments.
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