Gözde Ceran, Sara Samuei, Irmak Karakaya Durukan, Ömer Dag
The effect of solvent on the soft-templated synthesis of manganese-rich mesoporous Mn2-xMxP2O7 (M = Ni or Co; x = 0.14, 0.27, and 0.64) is systematically investigated using methanol, ethanol, and 1-butanol. Ethanol and 1-butanol solutions undergo rapid gelation via a sol-gel pathway, yielding high-surface-area mesoporous materials after calcination, whereas methanol solutions favor precipitation but still produce mesoporous structures upon coating, drying, and calcination. Both gel/precipitate fractions and whole solutions of the initial ingredient mixtures can be processed into homogeneous thin films on graphite rods via dip-coating and calcination. The resulting electrodes, calcined at various temperatures, are evaluated for the alkaline oxygen evolution reaction (OER) in 1 M KOH. Upon immersion, the pyrophosphate phases rapidly transform into their corresponding metal hydroxides, which act as the active catalytic phase. Incorporation of Ni(II) or Co(II) into manganese-based systems enhances electrode stability and catalytic performance, delivering low overpotentials (down to 230 mV at 1 mA cm-2) and small Tafel slopes (as low as 38.9 mV dec-1). These results highlight the critical role of solvent-controlled assembly and composition in tailoring mesostructure, transformation behavior, and OER activity.