Barakat Nasser A M, Ashour Eman, Sayed Yasmin T
Chemical Engineering Department, Minia University, Minya, Egypt.
R Soc Open Sci. 2025 Jun 18;12(6):250372. doi: 10.1098/rsos.250372. eCollection 2025 Jun.
Capacitive deionization (CDI) has emerged as a promising alternative for brackish water desalination due to its low energy consumption and operational simplicity. However, the performance of CDI is highly dependent on the properties of the electrode materials. In this study, Mn-doped activated carbon (Mn-AC) electrodes were synthesized and evaluated for enhanced ion removal efficiency in CDI systems. The Mn doping process was optimized using hydrothermal synthesis with varying KMnO precursor concentrations. Structural characterization via X-ray diffraction, Fourier transform infrared, scanning electron microscopy and elemental mapping confirmed successful Mn incorporation, while thermogravimetric analysis demonstrated improved thermal stability. Electrochemical studies, including cyclic voltammetry and chronoamperometry, revealed that Mn-AC electrodes exhibited higher specific capacitance and superior ion adsorption capacity compared with pristine activated carbon. The CDI performance was evaluated at different applied voltages and NaCl concentrations, demonstrating a significant increase in electrosorption capacity with optimized Mn doping. The highest electrosorption capacity was achieved at +1.2 V with 0.1 M NaCl, where Mn-AC exhibited a 33% higher adsorption efficiency than pristine AC. These findings highlight the potential of Mn-AC as an efficient electrode material for high-performance CDI applications, providing a sustainable and scalable solution for water desalination.
电容去离子化(CDI)因其低能耗和操作简便,已成为一种有前景的微咸水脱盐替代方法。然而,CDI的性能高度依赖于电极材料的特性。在本研究中,合成了锰掺杂活性炭(Mn-AC)电极,并评估了其在CDI系统中提高离子去除效率的性能。使用不同KMnO前驱体浓度的水热合成法对锰掺杂过程进行了优化。通过X射线衍射、傅里叶变换红外光谱、扫描电子显微镜和元素映射进行的结构表征证实了锰的成功掺入,而热重分析表明热稳定性有所提高。包括循环伏安法和计时电流法在内的电化学研究表明,与原始活性炭相比,Mn-AC电极具有更高的比电容和卓越的离子吸附能力。在不同的施加电压和NaCl浓度下对CDI性能进行了评估,结果表明优化锰掺杂后电吸附容量显著增加。在+1.2 V和0.1 M NaCl条件下实现了最高电吸附容量,此时Mn-AC的吸附效率比原始AC高33%。这些发现突出了Mn-AC作为高性能CDI应用的高效电极材料的潜力,为水脱盐提供了一种可持续且可扩展的解决方案。