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Drivers and Pathways for the Recovery of Critical Metals from Waste-Printed Circuit Boards

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Journal Adv Sci (Weinh)
Date 2024 Jun 5
PMID 38837685
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Abstract

The ever-increasing importance of critical metals (CMs) in modern society underscores their resource security and circularity. Waste-printed circuit boards (WPCBs) are particularly attractive reservoirs of CMs due to their gamut CM embedding and ubiquitous presence. However, the recovery of most CMs is out of reach from current metal-centric recycling industries, resulting in a flood loss of refined CMs. Here, 41 types of such spent CMs are identified. To deliver a higher level of CM sustainability, this work provides an insightful overview of paradigm-shifting pathways for CM recovery from WPCBs that have been developed in recent years. As a crucial starting entropy-decreasing step, various strategies of metal enrichment are compared, and the deployment of artificial intelligence (AI) and hyperspectral sensing is highlighted. Then, tailored metal recycling schemes are presented for the platinum group, rare earth, and refractory metals, with emphasis on greener metallurgical methods contributing to transforming CMs into marketable products. In addition, due to the vital nexus of CMs between the environment and energy sectors, the upcycling of CMs into electro-/photo-chemical catalysts for green fuel synthesis is proposed to extend the recycling chain. Finally, the challenges and outlook on this all-round upgrading of WPCB recycling are outlined.

Citing Articles

Drivers and Pathways for the Recovery of Critical Metals from Waste-Printed Circuit Boards.

Xia D, Lee C, Charpentier N, Deng Y, Yan Q, Gabriel J Adv Sci (Weinh). 2024; 11(30):e2309635.

PMID: 38837685 PMC: 11321694. DOI: 10.1002/advs.202309635.

References
1.
Jehanno C, Alty J, Roosen M, De Meester S, Dove A, Chen E . Critical advances and future opportunities in upcycling commodity polymers. Nature. 2022; 603(7903):803-814. DOI: 10.1038/s41586-021-04350-0. View

2.
Andrade D, de Almeida E, Pereira de Carvalho H, Pereira-Filho E, Amarasiriwardena D . Chemical inspection and elemental analysis of electronic waste using data fusion - Application of complementary spectroanalytical techniques. Talanta. 2021; 225:122025. DOI: 10.1016/j.talanta.2020.122025. View

3.
Suoranta T, Niemela M, Peramaki P . Comparison of digestion methods for the determination of ruthenium in catalyst materials. Talanta. 2014; 119:425-9. DOI: 10.1016/j.talanta.2013.11.043. View

4.
Do V, Lee J . Orbital Occupancy and Spin Polarization: From Mechanistic Study to Rational Design of Transition Metal-Based Electrocatalysts toward Energy Applications. ACS Nano. 2022; 16(11):17847-17890. DOI: 10.1021/acsnano.2c08919. View

5.
Nguyen V, Deferm C, Caytan W, Riano S, Jones P, Binnemans K . Conversion of Lithium Chloride into Lithium Hydroxide by Solvent Extraction. J Sustain Metall. 2023; 9(1):107-122. PMC: 10015601. DOI: 10.1007/s40831-022-00629-2. View