Dr. Slawomir Porada

Profile

Academic positionLecturer, Assistant Professor, Researcher
Research fieldsChemical and Thermal Process Engineering,Physical Chemistry of Molecules, Liquids and Interfaces, Biophysical Chemistry
KeywordsElectrical double layers, Ion-exchange membranes, Carbon slurries, Porous carbon electrodes, Water desalination

Current contact address

CountryPoland
CityWroclaw
InstitutionWroclaw University of Science and Technology
InstituteInstitute of Material Science and Applied Mechanics

Host during sponsorship

Prof. Dr. Volker PresserLeibniz-Institut für Neue Materialien gGmbH (INM), Saarbrücken
Start of initial sponsorship01/10/2014

Programme(s)

2014Humboldt Research Fellowship Programme for Postdocs

Publications (partial selection)

2015Slawomir Porada, Florian Schipper, Mesut Aslan, Markus Antonietti, Volker Presser, Tim-Patrick Fellinger: Capacitive deionization using diomass-based microporous salt-templated heteroatom-doped carbons. In: ChemSusChem, 2015, 1867-1874
2015Slawomir Porada, P.M. Biesheuvel, Volker Presser: Comment on Sponge‐Templated Preparation of High Surface Area Graphene with Ultrahigh Capacitive Deionization Performance. In: Advanced Functional Materials, 2015, 179-181
2015Matthew E. Suss, Slawomir Porada, Xiaow Sun, P.M. Biesheuvel, Jeyong Yoon, Volker Presser: Water desalination via capacitive deionization: what is it and what can we expect from it?. In: Energy & Environmental Science , 2015, 2296-2319
2014Slawomir Porada,Daniel Weingarth, Hubertus V.M. Hamelers, Marek Bryjak, Volker Presser, P.M. Biesheuvel: Carbon flow electrodes for continuous operation of capacitive deionization and capacitive mixing energy generation. In: Journal of Materials Chemistry A, 2014, 9313-9321
2014Slawomir Porada, Juhan Lee, Daniel Weingarth, Volker Presser: Continuous operation of an electrochemical flow capacitor. In: Electrochemistry Communications, 2014, 178-181
2014Bruno Bastos Sales, Odne Burheim, Slawomir Porada, Volker Presser, Cees J.N. Buisman, Hubertus V.M. Hamelers: Extraction of energy from small thermal differences near room temperature using capacitive membrane technology. In: Environmental Science & Technology Letters, 2014, 356-360