Yanhe Han , Hao Yao , Han Xu , Qingpeng Zhao , Nannan Wang , Shizong Wang , Xuejiao Ma
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引用次数: 0
Abstract
Molybdenum disulfide (MoS₂) has garnered significant attention as a highly efficient catalyst for hydrogen production due to its high activity, cost-effectiveness, and abundant availability. MoS2 has the disadvantages of poor electrical conductivity and slow electron transfer rate. Here in, a strategy of regulation of facet of MoS2 was developed to enhance the activity of MoS2 for hydrogen production. The results show that the incorporation of cerium dioxide (CeO2) and graphene oxide (GO) in MoS2 promoted the growth of MoS2 (002) and CeO2 (111) crystal surface, which increased the number of active sites and the surface area of the MoS2 electrode. In addition, the coupled facets of (002) of MoS2 and (111) of CeO2 reduced the intermediate energy barrier of the hydrolyzed ionization process for hydroxyl receptors, resulting in exceptional hydrogen evolution reaction (HER) performance and extended electrode lifespan. The TiO2/MoS2-CeO2/GO electrode achieved the current density of 10 mA/cm2 at an overpotential of 120 mV, a specific capacitance of 432.5 mF/cm2 and an AC impedance of 3.25Ω. The maximum hydrogen production and hydrogen production efficiency reached 24.54 mmol/(h·cm²) and 69.84 %, respectively, which are 1.53 times and 2.09 times higher than those of TiO2/MoS2 electrode, respectively. The Volmer-Heyrovsky mechanism for electrocatalytic hydrogen evolution was analyzed, and the stability and reusability of TiO2/MoS2-CeO2/GO electrode were confirmed through 3000 cycles of CV test and 20 h water electrolysis testing. Additionally, the effects of electrode material, input voltage, electrolyte concentration and electrolyte temperature on hydrogen production were investigated. The work provides reference for designing high-performance electrocatalytic hydrogen evolution electrode materials.
期刊介绍:
Colloids and Surfaces A: Physicochemical and Engineering Aspects is an international journal devoted to the science underlying applications of colloids and interfacial phenomena.
The journal aims at publishing high quality research papers featuring new materials or new insights into the role of colloid and interface science in (for example) food, energy, minerals processing, pharmaceuticals or the environment.