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The morphological changes upon cryomilling of cellulose and concurrent generation of mechanoradicals

机译:纤维素冷冻和力学生成的形态变化

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摘要

With mechanical input, chemical bonds in polymers can be broken. Recently, it was shown that reactive ends formed by homolytic cleavage, so-called mechanoradicals, can be used in driving further chemical reactions or in making new composite materials. Cellulose, the most abundant polymer on earth, can also be subjected to mechanical input via ball-milling to produce mechanoradicals. Despite many reports on morphological changes in cellulose upon milling, there is only a limited understanding on how these changes affect the mechanoradical production, i.e., in which domains of cellulose the bonds are broken to produce the mechanoradicals. Here we show, the effect of the initial morphology of cellulose (cotton or microcrystalline cellulose) and the mode of grinding (dry or solvent-assisted) on the amount of generated cellulose mechanoradicals. The morphological and the chemical changes taking place upon milling of cellulose are monitored by SEM, XRD, and ATR, and the number of mechanoradicals is determined by a first-time quantitative analysis of cellulose mechanoradicals using radical scavenger DPPH. Our findings can help in efficient mechanofunctionalization of cellulose and to make useful mechanochemical reactions of cellulose using mechanoradicals, which stand as a promising economic and environment-friendly alternative to the conventional solvent-Assisted chemistry of cellulose. (C) 2019 Published by Elsevier Ltd.
机译:通过机械输入,聚合物中的化学键可以破裂。最近,表明通过均匀切割,所谓的力学裂解形成的反应端可用于驱动进一步的化学反应或制造新的复合材料。纤维素,地球上最丰富的聚合物,也可以通过球磨机进行机械机械的机械铣削。尽管在研磨时有许多关于纤维素的形态变化的报告,但对于这些变化如何影响力机产生有限的了解,即,纤维素粘合剂的域被破坏以产生机械机械化。在这里,我们展示了纤维素(棉或微晶纤维素)的最初形态的效果以及研磨(干燥或溶剂辅助)的效果对产生的纤维素力学的量。通过SEM,XRD和ATR研磨在碾磨纤维素时进行的形态学和化学变化,通过使用自由基清除剂DPPH的纤维素力学的首次定量分析来确定力学仪的数量。我们的研究结果可以帮助纤维素的高效机械官能化,并使用力学制造纤维素的有用的机械化学反应,这是纤维素常规溶剂辅助化学的有希望的经济和环保替代品。 (c)2019年由elestvier有限公司发布

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