Vafakhah Sareh, Sim Glenn Joey, Saeedikhani Mohsen, Li Xiaoxia, Valdivia Y Alvarado Pablo, Yang Hui Ying
Pillar of Engineering Product Development, Singapore University of Technology and Design Singapore 487372
Department of Materials Science and Engineering, National University of Singapore 9 Engineering Drive 1 Singapore 117576.
Nanoscale Adv. 2019 Oct 8;1(12):4804-4811. doi: 10.1039/c9na00507b. eCollection 2019 Dec 3.
There is increasing interests in cost-effective and energy-efficient technologies for the desalination of salt water. However, the challenge in the scalability of the suitable compositions of electrodes has significantly hindered the development of capacitive deionization (CDI) as a promising technology for the desalination of brackish water. Herein, we introduced a 3D printing technology as a new route to fabricate electrodes with adjustable composition, which exhibited large-scale applications as free-standing, binder-free, and robust electrodes. The 3D printed electrodes were designed with ordered macro-channels that facilitated effective ion diffusion. The high salt removal capacity of 75 mg g was achieved for membrane capacitive deionization (MCDI) using 3D printed nitrogen-doped graphene oxide/carbon nanotube electrodes with the total electrode mass of 20 mg. The improved mechanical stability and strong bonding of the chemical components in the electrodes allowed a long cycle lifetime for the MCDI devices. The adjusted operational mode (current density) enabled a low energy consumption of 0.331 W h g and high energy recovery of ∼27%. Furthermore, the results obtained from the finite element simulations of the ion diffusion behavior quantified the structure-function relationships of the MCDI electrodes.
对于具有成本效益和能源效率的盐水淡化技术,人们的兴趣日益浓厚。然而,合适电极组成在扩大规模方面的挑战严重阻碍了电容去离子化(CDI)作为一种有前景的微咸水淡化技术的发展。在此,我们引入了一种3D打印技术,作为制造具有可调组成电极的新途径,该电极展现出作为独立、无粘结剂且坚固电极的大规模应用潜力。3D打印电极设计有有序的宏观通道,有利于有效离子扩散。使用总电极质量为20 mg的3D打印氮掺杂氧化石墨烯/碳纳米管电极,膜电容去离子化(MCDI)实现了75 mg g的高脱盐容量。电极中化学成分的机械稳定性提高和强结合性使MCDI装置具有较长的循环寿命。调整后的运行模式(电流密度)实现了0.331 W h g的低能耗和约27%的高能量回收率。此外,离子扩散行为的有限元模拟结果量化了MCDI电极的结构-功能关系。