Mayara Acioli, L. Bufaiçal, P. R. A. de Oliveira, Yngrid Synara de Sena Silva, Liying Liu, Ana Luísa Silva, Nakédia M. F. Carvalho
High Resolution Image Download MS PowerPoint Slide This work reports a new synthetic strategy and investigates the effect of thermal treatment on Bi and Co oxide composites (BCO), comprising Co-based sillenite (Bi 24– x Co x )Co 2 O 40, Co 3 O 4, and Bi 2 O 3, as well as their application as electrocatalysts in the oxygen evolution reaction (OER) and hydrogen evolution reaction (HER). The materials were synthesized by a modified Pechini sol–gel method using citric acid as a complexing agent and ethylene glycol as a polymerization agent and were calcined in the range between 500 and 1000 °C. Rietveld refinement of the XRD data confirmed the predominance of the sillenite and Co 3 O 4 crystalline phases, both with cubic structures, with minor quantities of α-Bi 2 O 3 (monoclinic) at 500 and 600 °C. A higher sillenite content (>60 wt %) was observed at 700 and 800 °C, while at 900 °C the sillenite phase decreased, disappearing completely at 1000 °C, where α-Bi 2 O 3 became dominant. The BCO sample calcined at 700 °C exhibited the lowest overpotentials for both the OER and HER in 1 mol L –1 KOH (pH 14), 475 and 307 mV at j ± 10 mA cm –2, respectively. The corresponding Tafel slopes for the OER and HER of 62 and 23 mV dec –1, respectively, also exhibited the lowest values. The superior catalytic performance of BCO-T700 can be related to the synergy between Co 2+ and Bi 3+ species shown by X-ray photoelectron spectroscopy. These findings reinforce the potential of sillenite-based composites as efficient, low-cost, bifunctional electrocatalysts for water splitting and hydrogen production. Notably, no prior electrochemical studies of cobalt sillenites synthesized via the adapted Pechini method were found, emphasizing the relevance of this work.