Maximizing Volumetric Removal Capacity in Capacitive Deionization by Adjusting Electrode Thickness and Charging Mode

被引:28
作者
Santos, Cleis [1 ,2 ]
Lado, Julio J. [1 ]
Garcia-Quismondo, Enrique [1 ]
Soria, Jorge [1 ]
Palma, Jesus [1 ]
Anderson, Marc A. [1 ,3 ]
机构
[1] IMDEA Energy Inst, Electrochem Proc Unit, E-28935 Mostoles, Spain
[2] IMDEA Mat Inst, Adv Mat Multifunct Applicat Grp, Madrid 28005, Spain
[3] Univ Wisconsin, Civil & Environm Engn, Madison, WI 53706 USA
关键词
NITROGEN-DOPED GRAPHENE; DE-IONIZATION PROCESSES; LONG-TERM STABILITY; WATER DESALINATION; CONSTANT-CURRENT; ENERGY RECOVERY; CARBON AEROGEL; OPERATIONAL PARAMETERS; FARADAIC REACTIONS; RATE CAPABILITY;
D O I
10.1149/2.1011807jes
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
Capacitive deionization (CDI) is an emerging desalination technology based on the same charge storage principles as in electrical double-layer supercapacitors (EDLC's). In this study, electrodes of differing thicknesses were tested using constant current (CC-CDI) and constant voltage (CV-CDI) operational modes in order to study the best way of sequestering the highest amount of ions under different salt concentration scenarios. CV-CDI was used to calculate electrode time constants (RC) and thereby determine a suitable current density for desalinating the solution. Results showed that the voltage pulse produced a fast but heterogeneous layer of ion adsorption, presumably, on the most accessible part of the electrode surface. Thus, volumetric specific capacitance under CV-CDI mode might vary from 17-24 F cm(-3) and 14-20 F cm(-3) for 50 mu m and 180 mu m electrodes, respectively. Nevertheless, results demonstrated that, under the constant current mode, it is possible to increase charge storage by 30% for a CDI cell consisting of thin electrodes and as much as 80% for thicker electrodes simply by controlling current density and, therefore, the rate capability. Moreover, the analysis of the charge efficiency indicated that a proper selection of the current density can result in efficiencies above 80% regardless the salt concentration scenario. (C) The Author(s) 2018. Published by ECS.
引用
收藏
页码:E294 / E302
页数:9
相关论文
共 72 条
[1]   Developments in thermal desalination processes: Design, energy, and costing aspects [J].
Al-Sahali, Mohammad ;
Ettouney, Hisham .
DESALINATION, 2007, 214 (1-3) :227-240
[2]   Microwave-Assisted Synthesis of Highly-Crumpled, Few-Layered Graphene and Nitrogen-Doped Graphene for Use as High-Performance Electrodes in Capacitive Deionization [J].
Amiri, Ahmad ;
Ahmadi, Goodarz ;
Shanbedi, Mehdi ;
Savari, Maryam ;
Kazi, S. N. ;
Chew, B. T. .
SCIENTIFIC REPORTS, 2015, 5
[3]   Capacitive deionization as an electrochemical means of saving energy and delivering clean water. Comparison to present desalination practices: Will it compete? [J].
Anderson, Marc A. ;
Cudero, Ana L. ;
Palma, Jesus .
ELECTROCHIMICA ACTA, 2010, 55 (12) :3845-3856
[4]  
Andres G. L., 2014, Journal of Water and Environment Technology, V12, P259, DOI 10.2965/jwet.2014.259
[5]   A capacitive deionization system with high energy recovery and effective re-use [J].
Andres, Ginno L. ;
Yoshihara, Yoshinobu .
ENERGY, 2016, 103 :605-617
[6]   Limitations of charge efficiency in capacitive deionization processes III: The behavior of surface oxidized activated carbon electrodes [J].
Avraham, Eran ;
Noked, Malachi ;
Bouhadana, Yaniv ;
Soffer, Abraham ;
Aurbach, Doron .
ELECTROCHIMICA ACTA, 2010, 56 (01) :441-447
[7]   Limitation of Charge Efficiency in Capacitive Deionization [J].
Avraham, Eran ;
Bouhadana, Yaniv ;
Soffer, Abraham ;
Aurbach, Doron .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2009, 156 (06) :P95-P99
[8]   Theory of membrane capacitive deionization including the effect of the electrode pore space [J].
Biesheuvel, P. M. ;
Zhao, R. ;
Porada, S. ;
van der Wal, A. .
JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2011, 360 (01) :239-248
[9]  
Blair J.W., 1960, SALINE WATER CONVERS, V27, P206, DOI [10.1021/ ba-1960-0027.ch020, DOI 10.1021/BA-1960-0027.CH020]
[10]   Ultracapacitors: why, how, and where is the technology [J].
Burke, A .
JOURNAL OF POWER SOURCES, 2000, 91 (01) :37-50