氢氧化钾
材料科学
碳化
碳纤维
微观结构
电化学
化学工程
电极
海水淡化
烧结
氢氧化物
选择性激光烧结
活性炭
生物量(生态学)
电导率
碳酸钾
电镀(地质)
冶金
无机化学
钾
作者
Hao Zhang,Jian Li,Guixin Dai,Yanling Guo,Yicong Li,Long Shi,Haoyu Zhang,Ailin Zhang
标识
DOI:10.1680/jgrma.24.00096
摘要
Currently, the application of 3D-printed biomass-based carbon electrodes is hindered by their suboptimal performance. This study utilizes walnut shell powder as a carbon source and employs selective laser sintering technology for the efficient 3D printing of a double-helix carbon precursor. High-performance biomass-based carbon electrodes are prepared through carbonization and potassium hydroxide (KOH) activation. Comparative studies on the microstructure and electrochemical performance of the carbonized and activated samples were conducted. Experimental results demonstrate that potassium hydroxide activation significantly enhances the microstructure of the carbon electrodes, leading to marked improvements in their electrochemical performance. During desalination experiments, the carbon electrodes exhibited excellent ion removal efficiency, with a maximum conductivity reduction rate of 0.2 μS/cm·min, confirming their feasibility in seawater desalination applications. This research validates the potential of walnut shell biomass for the preparation of 3D-printed carbon electrodes, addressing bottlenecks in traditional carbon electrode manufacturing processes while promoting efficient biomass utilization and environmental protection.
科研通智能强力驱动
Strongly Powered by AbleSci AI