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Construction of ion-imprinted nanofiber chitosan films using low-temperature thermal phase separation for selective and efficiency adsorption of Gd(III)

机译:使用低温热相分离施工离子印迹纳米纤维壳聚糖膜,用于GD(III)的选择性和效率吸附

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摘要

Rare earth elements are a treasure trove of new materials in the twenty-first century, however, the similar radii of the lanthanide metals make it difficult for the ionic rare earth elements to be selectively separated. Ion-imprinted technology can help to selectively separate rare earth elements, nevertheless, most materials used for ion-imprinted are expensive. Chitosan has a wide range of sources, low cost, and a large quantity of amino and hydroxyl groups, which is advantageous for adsorbing heavy metals. Most scholars have made chitosan into a shape such as microspheres, which does not exert the great value of chitosan and is difficult to recycle, which greatly affects the adsorption rate. There are few studies on increasing the specific surface area of chitosan, so there is still much room for improvement in the adsorption capacity of chitosan. In order to improve the performance of chitosan-based materials, this research reports the preparation of imprinted nanofiber chitosan films (INFCF) by ion-imprinted technique and low-temperature thermal phase separation. These methods not only make the material have a high BET surface area, but also enable the material to have selective adsorption capacity. The BET surface area of the film is 203.6 m(2) g(-1). The maximum adsorption capacity of INFCF for Gd(III) was 71.00 mg g(-1) at pH 7.0. The adsorption mechanism is summarized as a single layer of chemical adsorption. The excellent selectivity and repeatability of INFCF make it a high-quality material for the selective recovery of rare earth ions in industrial production.
机译:稀土元素是二十一世纪的新材料的宝库,然而,镧系金属的类似半径使得离子稀土元素难以选择性地分离。离子印迹技术可以帮助选择性地分离稀土元素,尽管如此,用于离子印迹的大多数材料都是昂贵的。壳聚糖具有广泛的来源,低成本和大量的氨基和羟基,这对于吸附重金属是有利的。大多数学者们已经将壳聚糖制成了一种形状,例如微球,这不会施加壳聚糖的大值,并且难以回收,这极大地影响了吸附速率。几乎没有关于增加壳聚糖的比表面积的研究,因此仍有很大的壳聚糖吸附能力的空间。为了提高基于壳聚糖的材料的性能,本研究通过离子印迹技术和低温热相分离报告了印迹纳米纤维壳聚糖膜(INFCF)的制备。这些方法不仅使材料具有高BET表面积,而且使材料能够具有选择性吸附能力。薄膜的BET表面积为203.6μm(2 )g(-1)。 GD(III)的INFCF的最大吸附容量在pH 7.0时为71.00mg(-1)。吸附机理总结为单层化学吸附。 Infcf的优异选择性和可重复性使其成为工业生产中稀土离子的选择性恢复的高质量材料。

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