In capacitive deionization (CDI), water is desalinated by storing ions in electrical double layers (EDLs) within the micropores of charged porous carbon electrodes. Recent experiments using chemically modified electrodes have shown differing, novel phenomena such as "inverted CDI," "enhanced CDI," and "inversion peaks." We here present an EDL and dynamic model which includes immobile chemical charge in the micropores and show that the models predict these disparate experimental observations. Our model also makes predictions for a previously undiscovered operational regime with higher salt adsorption, which we term extended voltage CDI.</p
The rapid and efficient exchange of ions between porous electrodes and aqueous solutions is importan...
With the increasing global water shortage issue, the development of water desalination and wastewate...
We present a porous electrode theory for capacitive deionization with electrodes containing nanopart...
In capacitive deionization (CDI), water is desalinated by storing ions in electrical double layers (...
AbstractIn capacitive deionization (CDI), water is desalinated by storing ions in electrical double ...
In capacitive deionization (CDI) water is desalinated by applying an electrical field between two po...
Capacitive deionization (CDI) is an electrochemical method for water desalination using porous carbo...
Membrane capacitive deionization (MCDI) is a technology for water desalination based on applying an ...
Capacitive deionization is a desalination technology to remove ions from aqueous solution in a cycli...
Porous carbon electrodes have significant potential for energy-efficient water desalination using a ...
<p>Capacitive deionization (CDI) is an emerging technology for the facile removal of charged ionic s...
ABSTRACT: Ion transport in porous conductive materials is of great importance in a variety of electr...
<p>Capacitive deionization (CDI) is an emerging technology for the facile removal of charged ionic s...
Capacitive deionization (CDI) is a promising desalination technology based on electrosorption on the...
Porous electrodes are important in many physical-chemical processes including capacitive deionizatio...
The rapid and efficient exchange of ions between porous electrodes and aqueous solutions is importan...
With the increasing global water shortage issue, the development of water desalination and wastewate...
We present a porous electrode theory for capacitive deionization with electrodes containing nanopart...
In capacitive deionization (CDI), water is desalinated by storing ions in electrical double layers (...
AbstractIn capacitive deionization (CDI), water is desalinated by storing ions in electrical double ...
In capacitive deionization (CDI) water is desalinated by applying an electrical field between two po...
Capacitive deionization (CDI) is an electrochemical method for water desalination using porous carbo...
Membrane capacitive deionization (MCDI) is a technology for water desalination based on applying an ...
Capacitive deionization is a desalination technology to remove ions from aqueous solution in a cycli...
Porous carbon electrodes have significant potential for energy-efficient water desalination using a ...
<p>Capacitive deionization (CDI) is an emerging technology for the facile removal of charged ionic s...
ABSTRACT: Ion transport in porous conductive materials is of great importance in a variety of electr...
<p>Capacitive deionization (CDI) is an emerging technology for the facile removal of charged ionic s...
Capacitive deionization (CDI) is a promising desalination technology based on electrosorption on the...
Porous electrodes are important in many physical-chemical processes including capacitive deionizatio...
The rapid and efficient exchange of ions between porous electrodes and aqueous solutions is importan...
With the increasing global water shortage issue, the development of water desalination and wastewate...
We present a porous electrode theory for capacitive deionization with electrodes containing nanopart...