Speciation‐Dependent Solvent Extraction of Polyoxopalladates Toward Separation of Critical Materials

D Doctor Stephen (Department of Chemistry Oregon State University Corvallis OR 97331 USA) A Alexander Roseborough (Department of Chemistry Oregon State University Corvallis OR 97331 USA) E Esther Julius (Department of Chemistry Oregon State University Corvallis OR 97331 USA) P Pere Miró (Department of Chemistry) M May Nyman (Department of Chemistry, Oregon State University)

Abstract

Abstract Innovating robust separation methods for critical elements extraction and reuse is important to sustain the global consumption of microelectronics, energy, and pharmaceuticals. Effective separations via liquid‐liquid extraction (LLE) requires molecular‐level understanding and optimization of solution speciation. Here, we design LLE for palladium based on polyoxopalladates (POPs), where Pd is critical for microelectronics, catalysts, and drug production. Mild solution conditions are designed to evaluate the role of templating heterometals and ligands (arsenate, phenylarsonate, phenylphosphonate, acetate, phosphate) that drive POP assembly. Small‐angle X‐ray scattering, electrospray ionization mass spectrometry, UV‐vis spectroscopy, along with compositional analysis, respectively described speciation and extraction efficiency (including separation factors for competitive Pd‐Ni separation). Most effective LLE of Pd (>99.9%) are arsenate/phenylphosphonate/acetate capped hexamers or heptamers without templating metals. These fragments of the larger, prior‐reported Pd 12 /Pd 15 /Pd 84 POPs represent simple formulations, important for translation to scaled‐up processes. Comparing alkali‐acetate buffers highlight that potassium is more effective than lithium or sodium, presumably due to strong ion‐pairing between Pd‐oxoanions and the larger alkali, facilitating transport across the aqueous‐organic interface. Pd and Au‐Pd LLE studies yielded the first K + ‐charge balanced and K + ‐templated POPs, illustrating simply swapping the alkali from Na + (usually employed) to K + can enable isolation of new topologies and inspire new applications.

Article Details

Volume / Issue Vol. 65, Issue 2
Published January 09, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (5)

D

Doctor Stephen

Department of Chemistry Oregon State University Corvallis OR 97331 USA

A

Alexander Roseborough

Department of Chemistry Oregon State University Corvallis OR 97331 USA

E

Esther Julius

Department of Chemistry Oregon State University Corvallis OR 97331 USA

P

Pere Miró

Department of Chemistry

M

May Nyman

Department of Chemistry, Oregon State University