微晶纤维素
纤维素
磷酸
水解
化学
制浆造纸工业
资源回收
离子液体
溶剂
生命周期评估
热稳定性
有机化学
原材料
微晶
乙酰丙酸
化学工程
酸水解
废物管理
材料科学
生物燃料
标杆管理
蔗渣
纳米颗粒
作者
María G. Paredes,Diego Rueda-Ordonez,Ramón Pita,Amanda L. T. Brandão,Johanna Castaño,Mayra A. Mariño,Paulina Pávez
标识
DOI:10.1021/acssuschemeng.5c12667
摘要
High Resolution Image Download MS PowerPoint Slide Although phosphorylated cellulose nanocrystals (P-CNCs) are promising biobased nanomaterials, their sustainable production requires hydrolysis processes that effectively balance performance, environmental impact, and economic feasibility. In this work, a phosphoric acid-derived Brønsted acidic ionic liquid (BAIL, S1 ) and conventional phosphoric acid (PA, S2 ) were compared as hydrolytic media for converting microcrystalline cellulose into P-CNCs. Experimentally, the resulting nanocrystals showed high crystallinity (>80%), nanoscale dimensions (length: 180–239 nm and width: 20–29 nm), good thermal stability (thermogravimetric analysis (TGA) T max: 329–345 °C), and negative surface charge (−24 to −30 mV). While both routes produced P-CNCs with comparable characteristics, S1 provided improved solvent recyclability. Life Cycle Assessment (LCA) and Techno-Economic Analysis (TEA) of pilot-scale projections indicated that the BAIL-based ( S1 ) process is a promising alternative, with economic performance mainly influenced by solvent costs and solid–liquid separation requirements. Nevertheless, solvent recovery and recycling significantly reduce both environmental burdens and process costs. Overall, BAIL-mediated hydrolysis emerges as a sustainable and scalable alternative to conventional PA-based production of phosphorylated CNCs.
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