Contribution to a Sustainable Society: Biosorption of Precious Metals Using the Microalga <i>Galdieria</i>

The red microalga <i>Galdieria</i> sp. is an extremophile that inhabits acidic hot sulphur springs and grows heterotrophically to a high cell density. These characteristics make <i>Galdieria</i> suitable for commercial applications as stable mass production is the key to succ...

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Bibliographic Details
Main Authors: Eri Adams, Kazuki Maeda, Yuki Kamemoto, Kazuho Hirai, Egi Tritya Apdila
Format: Article
Language:English
Published: MDPI AG 2024-01-01
Series:International Journal of Molecular Sciences
Subjects:
Online Access:https://www.mdpi.com/1422-0067/25/2/704
Description
Summary:The red microalga <i>Galdieria</i> sp. is an extremophile that inhabits acidic hot sulphur springs and grows heterotrophically to a high cell density. These characteristics make <i>Galdieria</i> suitable for commercial applications as stable mass production is the key to success in the algae business. <i>Galdieria</i> has great potential as a precious metal adsorbent to provide a sustainable, efficient and environmentally benign method for urban mining and artisanal small-scale gold mining. The efficiency and selectivity in capturing precious metals, gold and palladium from metal solutions by a <i>Galdieria</i>-derived adsorbent was assessed relative to commercially used adsorbents, ion exchange resin and activated charcoal. As it is only the surface of <i>Galdieria</i> cells that affect metal adsorption, the cell content was analysed to determine the manner of utilisation of those metabolites. <i>Galdieria</i> was shown to be protein-rich and contain beneficial metabolites, the levels of which could shift depending on the growth conditions. Separating the cell content from the adsorbent could improve the adsorption efficiency and reduce CO<sub>2</sub> emissions during the metal collection process. The commercial applications of <i>Galdieria</i> appear promising: growth is quick and dense; the precious metal adsorption capacity is highly efficient and selective in acidic conditions, especially at low metal concentrations; and the cell content is nutrient-rich.
ISSN:1661-6596
1422-0067