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Ternary Heterojunction Co9S8-MnO2@MoS2/NF as a High-Performance Bifunctional Electrocatalyst for Seawater
Wenbo Ma1, Yuanyuan Ma1, Jingqi Guan2
1Technology Innovation Center of Industrial Hemp, State Administration for Market Regulation, Heilongjiang Provincial Key Laboratory of Surface Active-Agents and Auxiliaries, College of Chemistry and Chemical Engineering, Qiqihar University, Qiqihar 161006, P. R. China.
Abstract:
Developing highly efficient and durable bifunctional electrocatalysts for large-scale alkaline water and seawater electrolysis remains a major challenge. In this work, we synthesized core-shell Co9S8-MnO2@MoS2/NF with ternary heterojunction interfaces via a two-step hydrothermal method. This ternary structure modulates the electronic structure at the interface, improves the adsorption of HER/OER intermediates, and enhances overall catalytic activity and stability. The MoS2 overlayer acts as a protective and electronic-modulation layer. Consequently, the Co9S8-MnO2@MoS2/NF exhibits outstanding bifunctional performance in alkaline freshwater, simulated seawater, and natural seawater, requiring overpotentials of only 64/87/97 mV for HER and 181/191/215 mV for OER at 10 mA cm-2. In a two-electrode configuration, the symmetric electrolyzer achieves 10 mA cm-2 at cell voltages of 1.46/1.51/1.52 V in the three electrolytes, outperforming most reported electrocatalysts. Moreover, it maintains stable operation for 210 h under multicurrent step testing in natural seawater. Density functional theory (DFT) calculations confirm that the MoS2 incorporation increases the density of states near the Fermi level and upshifts the d-band center, which significantly optimizes the Gibbs free energy for hydrogen adsorption (ΔGH*) and reduces the energy barrier of the OER rate-determining step (ΔGRDS). This work demonstrates that heterojunction engineering and electronic modulation provide an effective strategy for designing high-performance, corrosion-resistant bifunctional electrocatalysts for practical water-splitting and seawater-splitting applications.
