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具有可调孔径和改善机械强度的新型湿弹性纤维素纳米纤维冷冻凝胶,用于去除甲基橙染料。

Novel and wet-resilient cellulose nanofiber cryogels with tunable porosity and improved mechanical strength for methyl orange dyes removal.

机构信息

College of Chemistry and Chemical Engineering, Yunnan Normal University, Kunming 650092, China.

出版信息

J Hazard Mater. 2021 Aug 15;416:125897. doi: 10.1016/j.jhazmat.2021.125897. Epub 2021 Apr 15.

DOI:10.1016/j.jhazmat.2021.125897
PMID:34492835
Abstract

Interconnected macro-porous cryogels with robust and pore-tunable structures have been fabricated using chemically crosslinked microfibrillated cellulose (MFC). Periodate oxidation was initially conducted to introduce aldehyde groups into the MFC surface, followed by the freeze-induced chemical crosslinking via the formation of hemiacetal bonds between aldehyde and hydroxyl at -12 °C. The cryogels with pore-tunable structures and sharply enhanced mechanical strengths were finally achieved by re-assembly of MFCs through soaking in NaIO solution. Furthermore, the MFC cryogels were post-crosslinked by polyethyleneimine (PEI), bestowing the cryogels with the capability of adsorbing anionic dyes. The stress of the PEI-MFC cryogel at the 80% strain was determined to be 304.5 kPa, which is the maximum value for the nanocellulose-based cryogels reported so far. Finally, the adsorption performances of PEI-MFC cryogels for methyl orange (MO) were evaluated. Maximum adsorption capacity of 500 mg/g could be obtained by the Langmuir model, outperforming that of previous absorbent materials. Reuse experiments indicated that over 90% of adsorption capacity was retained after 6 cycles. Continuous clean-up experiments demonstrated excellent MO removal abilities of the PEI-MFC cryogel. This study shows that the novel, green strategy to fabricate the robust cryogel extends the practical applications of nanocellulose adsorbents for environmental remediation.

摘要

使用化学交联的微纤化纤维素 (MFC) 制备了具有强韧和可调节孔结构的互穿宏观多孔冷冻凝胶。首先对 MFC 表面进行过碘酸盐氧化,以在 MFC 表面引入醛基,然后在 -12°C 下通过形成醛和羟基之间的半缩醛键进行冷冻诱导的化学交联。最后,通过将 MFC 浸泡在 NaIO 溶液中进行再组装,得到具有可调节孔结构和显著增强机械强度的冷冻凝胶。此外,通过聚乙烯亚胺 (PEI) 对 MFC 冷冻凝胶进行后交联,赋予冷冻凝胶吸附阴离子染料的能力。PEI-MFC 冷冻凝胶在 80%应变下的应力被确定为 304.5 kPa,这是迄今为止报道的基于纳米纤维素的冷冻凝胶的最大值。最后,评估了 PEI-MFC 冷冻凝胶对甲基橙 (MO) 的吸附性能。通过 Langmuir 模型可获得 500mg/g 的最大吸附容量,优于先前的吸附材料。重复使用实验表明,经过 6 次循环后保留了超过 90%的吸附容量。连续净化实验表明,PEI-MFC 冷冻凝胶具有优异的 MO 去除能力。这项研究表明,制造强韧冷冻凝胶的新型绿色策略扩展了纳米纤维素吸附剂在环境修复中的实际应用。

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