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探讨从生物质衍生的硫酸活化炭对从模拟废水中选择性回收金的见解和优势。

Exploring the insights and benefits of biomass-derived sulfuric acid activated carbon for selective recovery of gold from simulated waste streams.

机构信息

Department of Separation Science, School of Engineering Science, Lappeenranta-Lahti University of Technology (LUT), FI-53850, Lappeenranta, Finland; Department of Food Process Engineering, School of Engineering Sciences, College of Basic and Applied Sciences, University of Ghana, P. O. Box LG 77, Legon, Accra, Ghana.

Department of Chemistry and Biochemistry, University of Arkansas, Fayetteville, AR 72701, USA.

出版信息

Waste Manag. 2024 Apr 1;177:135-145. doi: 10.1016/j.wasman.2024.02.002. Epub 2024 Feb 6.

Abstract

The surging affluent in society, concomitant with increasing global demand for electrical and electronic devices, has led to a sharp rise in e-waste generation. E-wastes contain significant amounts of precious metals, such as gold, which can be recovered and reused, thus reducing the environmental impact of mining new metals. Selective recovery using sustainable and cost-effective materials and methods is therefore vital. This study undertook a detailed evaluation of low-cost biomass-derived activated carbon (AC) for selective recovery of Au from simulated e-waste streams. Utilizing high-performance synthesized HSO-AC, the adsorption mechanisms were explicated through a combination of characterization techniques, i.e., FE-SEM, BET, TGA, XRD, FTIR, XPS, and DFT simulations to conceptualize the atomic and molecular level interactions. Optimization of coordination geometries between model HSO-AC and anionic complexes revealed the most stable coordination for AuCl (binding energy, E = -4064.15 eV). The Au selectivity was further enhanced by reduction of Au(III) to Au(0), as determined by XRD and XPS. The adsorption reaction was relatively fast (∼5h), and maximum Au uptake reached 1679.74 ± 37.66 mg/g (among highest), achieved through adsorption isotherm experiments. Furthermore, a mixture of 0.5 M thiourea/1 M HCl could effectively elute the loaded Au and regenerate the spent AC. This study presents radical attempts to examine in detail, the synergistic effects of HSO activation on biomass-derived ACs for selective recovery of Au from complex mixtures. The paper therefore describes a novel approach for the selective recovery of Au from e-wastes using multifunctional biomass-derived HSO-AC.

摘要

社会中不断增加的富裕阶层,加上对电气和电子设备需求的不断增长,导致电子垃圾的产生急剧增加。电子垃圾中含有大量的贵金属,如金,可以回收再利用,从而减少开采新金属对环境的影响。因此,使用可持续且具有成本效益的材料和方法进行选择性回收至关重要。本研究详细评估了低成本生物质衍生活性炭(AC)对模拟电子废物中 Au 的选择性回收。利用高性能合成的 HSO-AC,通过 FE-SEM、BET、TGA、XRD、FTIR、XPS 和 DFT 模拟等多种表征技术,阐明了吸附机制,从原子和分子水平上概念化了相互作用。优化模型 HSO-AC 和阴离子配合物之间的配位几何形状,揭示了 AuCl 的最稳定配位(结合能,E = -4064.15 eV)。通过 XRD 和 XPS 确定 Au(III)还原为 Au(0)进一步增强了 Au 的选择性。吸附反应相对较快(约 5 小时),通过吸附等温线实验,最大 Au 吸附量达到 1679.74 ± 37.66 mg/g(最高之一)。此外,0.5 M 硫脲/1 M HCl 的混合物可以有效地洗脱负载的 Au 并再生用过的 AC。本研究试图详细检查 HSO 活化对生物质衍生 AC 从复杂混合物中选择性回收 Au 的协同作用。因此,本文提出了一种使用多功能生物质衍生 HSO-AC 从电子废物中选择性回收 Au 的新方法。

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