二价
机制(生物学)
化学
作文(语言)
离子交换
电容感应
无机化学
离子
化学工程
有机化学
工程类
物理
电气工程
语言学
量子力学
哲学
作者
Julio J. Lado,Enrique García‐Quismondo,Alba Fombona‐Pascual,Andreas Mavrandonakis,Carlos De La Cruz,F. Palacio,Víctor A. de la Peña O’Shea,Louis C. P. M. de Smet,Jesús Palma
出处
期刊:Water Research
[Elsevier BV]
日期:2024-03-13
卷期号:255: 121469-121469
被引量:7
标识
DOI:10.1016/j.watres.2024.121469
摘要
Soil salinization poses a significant challenge to agricultural activities. To address this, the agricultural industry seeks an irrigation water solution that reduces both ionic conductivity and sodium adsorption rate (SAR), thereby diminishing the risks of soil sodification and fostering sustainable crop production. Capacitive deionization (CDI) is an attractive electrochemical technology to advance this search. Recently, a one-dimensional transient CDI model unveiled a capacitive ion-exchange mechanism presenting the potential to adjust the treated water composition by modifying monovalent and divalent cation concentrations, thereby influencing the SAR index. This behavior would be achieved by using electrodes rich in surface functional groups able to efficiently capture divalent cations during conditioning and releasing them during charging while capturing monovalent ions. Beyond the theoretical modelling, the current experimental research demonstrates, for the first time, the effectiveness of the capacitive ion-exchange mechanism in a CDI pilot plant using real water samples spiked with solutions containing specific mono and divalent ions. Electrosorption experiments and computational modeling, specifically Density-Functional Theory (DFT), were used along with the analysis of the surface functional groups present in the electrodes to describe the capacitive ion-exchange phenomenon and validate the steps involved on it, highlighting the conditioning as a critical step. Various operational and flow modes confirm the versatility of CDI technology, achieving separation factors (R
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