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Recovery of valuable metals from electronic scraps by clays and organo-clays: Study on bi-ionic model solutions

机译:通过粘土和有机粘土从电子废料中回收有价金属:双离子模型溶液的研究

摘要

The demand of valuable metals, as precious metals and rare earths, is constantly increasing in the global market, as many and different technological applications exploit these materials because of their unique properties. Since natural resources are located just in focused areas, an interesting possibility could be the recovery of metals from Waste Electrical and Electronic Equipment (WEEE). The aim of this work is to evaluate the recovery potentialities of clays and organo-clay based systems towards the metals contained in the solutions of electronic scraps dissolved in strong acid, by preliminary tests on bi-ionic model solutions. Lanthanum has been chosen as representative of the rare earths while copper has been considered since it is by far the most used metal in electric and electronic equipment. The considered sorbents are a montmorillonitic clay and two polyamine based organo-clays. Uptake and release processes have been carried out in order to assess the performances of these solids and to evaluate the uptake and release mechanisms. The results showed that the cationic exchange is the prevailing mechanism in the case of pristine clay, while both coordinating effect due to amino groups and cationic exchange occur in the case of modified clays, respectively accounting for copper and lanthanum uptake. Furthermore the pH was found having a great influence in both the adsorption and desorption phenomena.
机译:在全球市场上,作为贵金属和稀土的贵重金属需求不断增长,因为许多不同的技术应用因其独特的性能而利用这些材料。由于自然资源仅位于重点区域,因此有趣的可能性可能是从废弃电气电子设备(WEEE)中回收金属。这项工作的目的是通过对双离子模型溶液的初步测试,评估粘土和有机粘土基体系对溶于强酸的电子废料溶液中所含金属的回收潜力。镧已被选作稀土的代表,而铜则被认为是稀土,因为铜是迄今为止电气和电子设备中使用最广泛的金属。所考虑的吸附剂是蒙脱土和两种基于聚胺的有机粘土。为了评估这些固体的性能并评估摄取和释放机理,已经进行了摄取和释放过程。结果表明,在原始粘土的情况下,阳离子交换是主要机理,而在改性粘土的情况下,由于氨基引起的配位作用和阳离子交换均发生,分别占铜和镧的吸收。此外,发现pH对吸附和解吸现象都有很大的影响。

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