Discovery of Inaccessible Supersaturated Metastable Li3VO4–Li2MoO4 Solid Solutions via Spray Drying for High-Performance Anodes

Abstract

A previously inaccessible metastable solid-solution phase, Li3–xV1–xMoxO4 (LVMoO), has been successfully synthesized for the first time over a remarkably wide compositional range (0.25 ≤ x ≤ 0.75). This new phase forms a single, impurity-free solid solution adopting a phenakite-type lattice, extending compositional limits far beyond equilibrium thermodynamic boundaries. The breakthrough is enabled by a kinetically driven spray-drying process in which ultrafast solvent evaporation within less than one second forces the simultaneous co-precipitation of V and Mo species. This suppresses sequential crystallization and prevents phase segregation, thereby stabilizing supersaturated nonequilibrium states. Operating at only 160 °C, the process requires no post-calcination and yields homogeneous, waste-free powders suitable for large-scale production. XRD confirms continuous lattice incorporation of V and Mo across the solid-solution series, while SEM-EDX analyses reveal composition-dependent nanostructures with uniform elemental distributions. A representative composition, Li2.5V0.5Mo0.5O4 (x = 0.5), delivers a high reversible capacity of 650 mAh g–1 together with exceptional rate performance: 411 mAh g–1 during delithiation at 15 A g–1, and, strikingly, 389 mAh g–1 during lithiation at 5 A g–1. These results establish nonequilibrium spray drying as a significant and scalable synthetic route for supersaturated LVMoO solid solutions that unite high energy, high power, and long-term durability.

Supplementary files

Article information

Article type
Paper
Submitted
02 Mar 2026
Accepted
30 Apr 2026
First published
06 May 2026

J. Mater. Chem. A, 2026, Accepted Manuscript

Discovery of Inaccessible Supersaturated Metastable Li3VO4–Li2MoO4 Solid Solutions via Spray Drying for High-Performance Anodes

K. Matsumura, D. Saito, E. Iwama, P. Rozier, P. Taberna, P. Simon, W. Naoi and K. Naoi, J. Mater. Chem. A, 2026, Accepted Manuscript , DOI: 10.1039/D6TA01802E

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