Chemical Engineering & Pilot Plant Department, Engineering Research and Renewable Energy Institute, National Research Centre (NRC), Cairo, Egypt.
Physical Chemistry Department, Research Institute of Advanced Materials Technology and Mineral Resources, National Research Centre (NRC), Cairo, Egypt.
Environ Sci Pollut Res Int. 2024 Apr;31(19):28719-28733. doi: 10.1007/s11356-024-32948-0. Epub 2024 Apr 1.
Green hydrogen generation technologies are currently the most pressing worldwide issues, offering promising alternatives to existing fossil fuels that endanger the globe with growing global warming. The current research focuses on the creation of green hydrogen in alkaline electrolytes utilizing a Ni-Co-nano-graphene thin film cathode with a low overvoltage. The recommended conditions for creating the target cathode were studied by electrodepositing a thin Ni-Co-nano-graphene film in a glycinate bath over an iron surface coated with a thin copper interlayer. Using a scanning electron microscope (SEM) and energy-dispersive X-ray (EDX) mapping analysis, the obtained electrode is physically and chemically characterized. These tests confirm that Ni, Co, and nano-graphene are homogeneously dispersed, resulting in a lower electrolysis voltage in green hydrogen generation. Tafel plots obtained to analyze electrode stability revealed that the Ni-Co-nano-graphene cathode was directed to the noble direction, with the lowest corrosion rate. The Ni-Co-nano-graphene generated was used to generate green hydrogen in a 25% KOH solution. For the production of 1 kg of green hydrogen utilizing Ni-Co-nano-graphene electrode, the electrolysis efficiency was 95.6% with a power consumption of 52 kwt h, whereas it was 56.212. kwt h for pure nickel thin film cathode and 54. kwt h for nickel cobalt thin film cathode, respectively.
绿色氢气生成技术是目前全球最紧迫的问题,为现有化石燃料提供了有前途的替代品,这些燃料因全球变暖而对全球构成威胁。目前的研究集中在利用碱性电解质中的 Ni-Co-纳米石墨烯薄膜阴极在低过电压下产生绿色氢气。通过在涂有薄铜中间层的铁表面上的甘氨酸浴中电沉积薄的 Ni-Co-纳米石墨烯薄膜,研究了生成目标阴极的推荐条件。使用扫描电子显微镜 (SEM) 和能量色散 X 射线 (EDX) 映射分析对获得的电极进行物理和化学表征。这些测试证实 Ni、Co 和纳米石墨烯均匀分散,导致绿色氢气生成中的电解电压降低。为分析电极稳定性而获得的塔菲尔图表明,Ni-Co-纳米石墨烯阴极指向贵金属方向,具有最低的腐蚀速率。在 25%KOH 溶液中使用生成的 Ni-Co-纳米石墨烯生成绿色氢气。利用 Ni-Co-纳米石墨烯电极生产 1 公斤绿色氢气时,电解效率为 95.6%,耗电量为 52 kwt h,而纯镍薄膜阴极为 56.212. kwt h,镍钴薄膜阴极为 54. kwt h。