Vafakhah Sareh, Saeedikhani Mohsen, Tanhaei Mohammad, Huang Shaozhuan, Guo Lu, Chiam Sing Yang, Yang Hui Ying
Pillar of Engineering Product Development, Singapore University of Technology and Design, Singapore 487372.
Nanoscale. 2020 Nov 26;12(45):22917-22927. doi: 10.1039/d0nr05826b.
Effective ion intercalation nanomaterials provide tremendous opportunities to various deionization systems such as capacitive deionization (CDI) to significantly improve the removal capacity of brackish water desalination. However, the asymmetric design of CDI devices causes a low removal rate due to the indispensable regeneration half-cycle. Furthermore, choices of chloride selective electrodes for such devices are limited. This imposes a big challenge on further improvement of CDI systems. Herein, we report a cation-selective CDI system using a single bi-functional Na2VTi(PO4)3@carbon nanomaterial with redox couples of V4+/V3+ and Ti3+/Ti4+ as an advanced symmetric electrode. The as-prepared continuous desalination set-up shows a superior removal rate of 0.022 mg g-1 s-1 (1.32 mg g-1 min-1) with a high half-cycle removal capacity of 35 mg g-1, and extremely low energy consumption of 0.14 W h g-1 (at a current density of 100 mA g-1). In addition, an extremely high cycle-stability of at least 50 cycles is achieved. The bi-functional intercalation mechanism is investigated by in situ XRD and ex situ XPS. The symmetric device yields a simplified and low-cost configuration with improved energy efficiency and high removal capacity. This opens a new horizon towards the commercialization of CDI technologies.
有效的离子插层纳米材料为各种去离子系统(如电容去离子(CDI))提供了巨大机遇,可显著提高微咸水脱盐的去除能力。然而,CDI装置的不对称设计由于不可避免的再生半周期而导致去除率较低。此外,此类装置中氯离子选择性电极的选择有限。这对CDI系统的进一步改进构成了巨大挑战。在此,我们报道了一种阳离子选择性CDI系统,该系统使用具有V4+/V3+和Ti3+/Ti4+氧化还原对的单一双功能Na2VTi(PO4)3@碳纳米材料作为先进的对称电极。所制备的连续脱盐装置显示出0.022 mg g-1 s-1(1.32 mg g-1 min-1)的优异去除率,半周期去除容量高达35 mg g-1,以及0.14 W h g-1的极低能耗(在电流密度为100 mA g-1时)。此外,还实现了至少50个循环的极高循环稳定性。通过原位XRD和非原位XPS研究了双功能插层机制。该对称装置具有简化且低成本的配置,同时提高了能源效率和去除能力。这为CDI技术的商业化开辟了新的前景。