Lin Shusen, Habib Md Ahasan, Joni Mehedi Hasan, Dristy Sumiya Akter, Mandavkar Rutuja, Jeong Jae-Hun, Chung Young-Uk, Lee Jihoon
Department of Electronic Engineering, College of Electronics and Information, Kwangwoon University, Nowon-gu, Seoul 01897, Republic of Korea.
Nanomaterials (Basel). 2024 Apr 17;14(8):698. doi: 10.3390/nano14080698.
Hydrogen is one of the most promising green energy alternatives due to its high gravimetric energy density, zero-carbon emissions, and other advantages. In this work, a CoFeBP micro-flower (MF) electrocatalyst is fabricated as an advanced water-splitting electrocatalyst by a hydrothermal approach for hydrogen production with the highly efficient hydrogen evolution reaction (HER) and oxygen evolution reaction (OER). The fabrication process of the CoFeBP MF electrocatalyst is systematically optimized by thorough investigations on various hydrothermal synthesis and post-annealing parameters. The best optimized CoFeBP MF electrode demonstrates HER/OER overpotentials of 20 mV and 219 mV at 20 mA/cm. The CoFeBP MFs also exhibit a low 2-electrode (2-E) cell voltage of 1.60 V at 50 mA/cm, which is comparable to the benchmark electrodes of Pt/C and RuO. The CoFeBP MFs demonstrate excellent 2-E stability of over 100 h operation under harsh industrial operational conditions at 60 °C in 6 M KOH at a high current density of 1000 mA/cm. The flower-like morphology can offer a largely increased electrochemical active surface area (ECSA), and systematic post-annealing can lead to improved crystallinity in CoFeBP MFs.
由于氢具有高重量能量密度、零碳排放等优点,它是最有前景的绿色能源替代品之一。在这项工作中,通过水热法制备了一种CoFeBP微花(MF)电催化剂,作为一种先进的析水电催化剂用于氢气生产,具有高效的析氢反应(HER)和析氧反应(OER)。通过对各种水热合成和退火后参数的深入研究,系统地优化了CoFeBP MF电催化剂的制备过程。最佳优化的CoFeBP MF电极在20 mA/cm²时展现出20 mV的HER过电位和219 mV的OER过电位。CoFeBP MF在50 mA/cm²时还表现出1.60 V的低双电极(2-E)电池电压,这与Pt/C和RuO的基准电极相当。在6 M KOH中、60 °C的苛刻工业操作条件下、1000 mA/cm²的高电流密度下,CoFeBP MF在超过100小时的运行中表现出优异的双电极稳定性。花状形态可以提供大幅增加的电化学活性表面积(ECSA),而系统的退火后处理可以提高CoFeBP MF的结晶度。