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Catalytic dissolution of metals from printed circuit boards using a calcium chloride-based deep eutectic solvent

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journal contribution
posted on 2022-05-17, 09:07 authored by Rodolfo Marin Rivera, Guillaume Zante, Jennifer M Hartley, Kart S Ryder, Andrew P Abbott

Due to their high metal content, printed circuit boards (PCBs) are an attractive resource for metal recovery. Until now, the dissolution and subsequent recovery of metals from PCBs involve either pyro- and/or hydrometallurgy. Such processing routes are typically very energy intensive and generate large volumes of solid residues and wastewater, which require energy to be further treated and disposed. Thus, there is a need to develop more energy-efficient and environmentally-compatible processes. This study investigates the use of catalytic dissolution of metals from PCBs in a eutectic solvent formed from calcium chloride hexahydrate and ethylene glycol (EG) as a potential autocatalytic methodology for selective metal recovery from PCBs. Two oxidising agents, FeCl3 and CuCl2, were used as redox catalysts as both of them demonstrate high solubility and fast electron transfer. The catalysts selectively etched copper, allowing gold and nickel to be recovered by simple filtration. Leaching rates determined with an optical profiler showed that CuCl2 enabled faster leaching kinetics compared to FeCl3 and this is discussed in terms of the dissolution mechanism.

Funding

European Union's Horizon 2020 research and innovation programme under the Marie Sklodowska-Curie grant agreement number 101026159.

Faraday Institution (Faraday Institution grant codes FIRG005 and FIRG006, project website https://relib.org.uk)

UKRI Interdisciplinary Circular Economy Centre for Technology Metals, Met4Tech project (EP/V011855/1)

History

Citation

Green Chem., 2022,24, 3023-3034

Author affiliation

School of Chemistry, University of Leicester

Version

  • AM (Accepted Manuscript)

Published in

GREEN CHEMISTRY

Volume

24

Issue

7

Pagination

3023 - 3034

Publisher

Royal Society of Chemistry

issn

1463-9262

eissn

1463-9270

Acceptance date

2022-03-07

Copyright date

2022

Available date

2023-03-08

Language

English