Bioleaching of olivine and enstatite with formation of Mg-oxalate mediated by engineered Gluconobacter oxydans
Abstract
Abstract Carbon mineralization using ultramafic rocks is a promising approach for long-term carbon dioxide removal. Here, we investigate whether a genetically engineered strain of Gluconobacter oxydans (B58 ∆pstS, P112:mgdh) can simultaneously achieve carbon mineralization and bioleach critical elements. Olivine and enstatite were bioleached at low-temperature conditions (30 °C) and with 5% pulp density. Direct G. oxydans -mineral contact promotes Fe 2+ oxidation and leads to higher leaching efficiency compared to leaching with a cell-free biolixiviant. Importantly, G. oxydans facilitates the precipitation of magnesium oxalate, a compound with twice the carbon storage capacity of magnesite. Oxalic acid was detected in the G. oxydans -produced biolixiviant, and solid-phase Mg-oxalate formed most efficiently at low pH. SEM and XRD analyses reveal extensive olivine dissolution and secondary coating by Mg-oxalate and amorphous silica, which may inhibit further leaching. Mass balance calculations show that G. oxydans leached up to 75% of the Mg hosted in the starting materials, while only 11% of leached Mg reacted to sequester carbon as Mg-oxalate after 15 days. The enhanced sequestration potential of Mg-oxalate combined with bioaccelerated critical element leaching to offset costs represents a promising opportunity for global carbon storage that is worthy of further investigation. (193/200)
Article Details
Authors (8)
Jacob D. Klug
Luke Plante
James L. Adair
Alia Almansoori
Joseph J. Lee
Stephanie Murillo Maikut
Buz Barstow
Department of Biological and Environmental Engineering, Cornell University
Esteban Gazel