Key Laboratory of Materials Physics, Anhui Key Laboratory of Nanomaterials and Nanotechnology, Centre for Environmental and Energy Nanomaterials, Anhui Key Laboratory of Nanomaterials and Nanotechnology, Institute of Solid State Physics, HFIPS, Chinese Academy of Sciences, Hefei 230031 PR China; Science Island Branch of Graduate School, University of Science and Technology of China, Hefei 230026, PR China.
Key Laboratory of Materials Physics, Anhui Key Laboratory of Nanomaterials and Nanotechnology, Centre for Environmental and Energy Nanomaterials, Anhui Key Laboratory of Nanomaterials and Nanotechnology, Institute of Solid State Physics, HFIPS, Chinese Academy of Sciences, Hefei 230031 PR China; Science Island Branch of Graduate School, University of Science and Technology of China, Hefei 230026, PR China.
Water Res. 2022 Jul 15;220:118642. doi: 10.1016/j.watres.2022.118642. Epub 2022 May 20.
The three-dimensional (3D) carbon coated nickel foam was utilized as current collector in a flow-electrode capacitive deionization (CF-FCDI) device to strengthen the charge transfer ability of FCDI device, achieving distinguished desalination efficiency for real seawater. Utilizing 30 ppi carbon coated nickel foam as current collector with 12.5 wt% AC content at 1.2 V to treat 3.5 g L NaCl solution, the CF-FCDI achieved 99.8% of salt removal efficiency (SRE), 3.29 µmol cm min of average salt removal rate (ASRR) and 97.0% of charge efficiency (CE), surpassing most desalination performances in previous reports. Compared with the titanium mesh (TM-FCDI) and graphite plate (GP-FCDI) current collector, the three-dimensional electric field and computational fluid dynamics (CFD) simulations demonstrated that 3D foam current collector has obvious stronger competitiveness. Its intrinsic 3D interconnected open-pore structure as flow channel and 3D electric field could not only enlarge the charge contact area between the current collector and flow-electrode, but also eliminate the restriction of 0.75 mm effective charging range within the carbon slurry in traditional serpentine flow channels. Finally, the excellent desalination performance of CF-FCDI device was also verified by treating simulated seawater, real seawater samples from Yellow Sea and South China Sea with a high SRE of 99.9%, 99.8%, and 99.9%, respectively. This work introduced a new strategy for enhancing charge transfer ability and overall desalination efficiency of FCDI device by utilizing a novel 3D foam-structured current collector for real seawater desalination.
三维(3D)碳包覆泡沫镍用作流电极电容去离子(CF-FCDI)装置中的集流器,以增强 FCDI 装置的电荷转移能力,从而实现对实际海水的卓越脱盐效率。在 1.2 V 下,采用 30 ppi 碳包覆泡沫镍作为集流器,AC 含量为 12.5 wt%,处理 3.5 g L NaCl 溶液,CF-FCDI 实现了 99.8%的盐去除效率(SRE)、3.29 µmol cm min 的平均盐去除率(ASRR)和 97.0%的电荷效率(CE),超过了之前报道的大多数脱盐性能。与钛网(TM-FCDI)和石墨板(GP-FCDI)集流器相比,三维电场和计算流体动力学(CFD)模拟表明,三维泡沫集流器具有明显更强的竞争力。其固有的 3D 互联开式多孔结构作为流道和 3D 电场不仅可以扩大集流器与流电极之间的电荷接触面积,而且还可以消除传统蛇形流道中碳浆内 0.75 mm 有效充电范围的限制。最后,通过处理模拟海水、来自黄海和南海的实际海水样本,也验证了 CF-FCDI 装置的卓越脱盐性能,SRE 分别高达 99.9%、99.8%和 99.9%。这项工作通过利用新型 3D 泡沫结构集流器为实际海水脱盐提供了一种增强 FCDI 装置电荷转移能力和整体脱盐效率的新策略。