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Ultrasound-assisted synthesis of N235-impregnated resins for vanadium (V) adsorption

机译:超声辅助N235浸渍树脂对钒(V)的吸附合成

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摘要

N235-impregnated resins were prepared using XAD-16HP macroporous adsorption resins as support with and without ultrasonic irradiation to evaluate the effects of ultrasound impregnation (UI) on the preparation and adsorption characteristics of the resins. The results show that the impregnation ratio of the solvent-impregnated resins (SIRs) prepared by ultrasound impregnation method (SIRs-UI) increases obviously but their adsorption capacity for V(V) just slightly increases and the utilization rate of the extractant decreases with the augmentation of ultrasound power. This may be caused by the fact that more extractant can enter into the deeper pores of the resins under high ultrasound intensity, but these extractants cannot effectively react with V(V). The impregnation equilibrium time of SIRs-UI can be obviously shortened in comparison to that of the SIRs prepared by conventional impregnation method (SIRs-CI) (3 min versus 240 min) due to the cavitation effect evoked by ultrasound. Ultrasonic irradiation may cause more N235 desorbed from the pores of the resin at low N235 content, resulting in lower adsorption capacity for V(V) than that of SIRs-CI, but the adsorption capacity is inverse at higher N235 content. N235 may be distributed more homogeneously in the pores of XAD-16HP with ultrasonic irradiation, thus, SIRs-UI presents higher adsorption capacity and stronger stability than SIRs-CI. This study manifests that ultrasound-assistant impregnation method may be a potential and promising technique for the preparation of SIRs.
机译:使用XAD-16HP大孔吸附树脂作为载体,在有和没有超声辐射的情况下,制备N235浸渍树脂,以评估超声浸渍(UI)对树脂制备和吸附特性的影响。结果表明,超声浸渍法(SIRs-UI)制备的溶剂浸渍树脂(SIRs)的浸渍率明显增加,但其对V(V)的吸附能力略有增加,而萃取剂的利用率则随增强超声功率。这可能是由于在高超声强度下更多的萃取剂可以进入树脂的较深孔中,但是这些萃取剂无法有效地与V(V)反应。与传统的浸渍方法(SIRs-CI)制备的SIR相比,SIRs-UI的浸渍平衡时间可以明显缩短(3 min对240 min),这是由于超声引起的空化作用。超声波照射可能导致更多的N235在低N235含量下从树脂的孔中解吸,导致对V(V)的吸附能力低于SIRs-CI,但在较高N235含量下的吸附能力却相反。 N235可能会更均匀地分布在XAD-16HP的孔中,因此SIRs-UI比SIRs-CI具有更高的吸附能力和更强的稳定性。这项研究表明,超声辅助浸渍法可能是制备SIR的潜在技术。

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