Javascript must be enabled to continue!
(Invited) Crosslinked High Temperature Polymer Electrolyte Membranes
View through CrossRef
High temperature polymer electrolyte membranes containing basic units that are able to interact with strong protic acids providing ionically conductive composite membrane have shown respectable performance and long operational stability. Further increase of the operation temperature and even an increase on the obtained conductivity values would facilitate the construction of efficient systems providing both electricity and heat, increasing thus the total efficiency.
Initial attempts to stabilize the HTPEM electrolyte membranes through covalent crosslinking have proven that the operation temperature can be shifted up to 220oC 1,2. Different crosslinking methodologies have been tested to stabilize either PBI or aromatic polyethers bearing pyridine units3,4. In the present work we focused on the optimization of the crosslinking methodology using side double bonds and we also develop new crosslinking methodologies leading to wholly aromatic crosslinked structures. Different type of crosslinkers have been used, controlling thus the acid doping ability of the final membranes while the use of dopable crosslinkers that enable the high acid uptake and retention. Moreover, depending on the chemical structure of the crosslinked membranes, a significant increase of the conductivity values of the final acid doped composite membranes was obtained. High temperature operation as the one achieved here enables the use of liquid feed like methanol in a compact methanol reformer-high temperature PEM fuel Cell setup that is under construction and testing5.
References: 1. K.D. Papadimitriou, F. Paloukis, S.G. Neophytides, J.K. Kallitsis, “Cross-Linking of Side Chain Unsaturated Aromatic Polyethers for High Temperature Polymer Electrolyte Membrane Fuel Cell Applications” Macromolecules 44, 4942–4951 (2011)
2. C.I Morfopoulou, A.K. Andreopoulou, M.K. Daletou, S.G. Neophytides J.K. Kallitsis “Cross-linked high temperature polymer electrolytes through oxadiazole bond formation and their applications in HT PEM fuel cells” Journal of Materials Chemistry A: Materials for Energy and Sustainability1 (5) 1613-1622, (2013)
3. “Pyridine Containing Aromatic Polyether Membranes” J.K Kallitsis, A.K Andreopoulou, M. Daletou, S. Neophytides; in “Part I: Approaches to HTPEM Fuel Cells” of “High Temperature Polymer Electrolyte Fuel Cells - Approaches, Status and Perspectives” Springer International Publishing AG, Cham; Edited by J.O. Jensen, D. Aili, H.A. Hjuler, Q. Li, 2016.
4. K.D. Papadimitriou, M. Geormezi, S.G. Neophytides, J.K. Kallitsis “Covalent cross-linking in phosphoric acid of pyridine based aromatic polyethers bearing side double bonds for use in high temperature polymer electrolyte membrane fuel cells’ Journal of Membrane Science 433, 1–9 (2013)
5. G. Avgouropoulos, S. Schlicker, K.-P. Schelhaas, J. Papavasiliou , K.D. Papadimitriou, E. Theodorakopoulou, N. Gourdoupi, A. Machocki, T. Ioannides, J.K. Kallitsis, G. Kolb, S. Neophytides “Performance evaluation of a proof-of-concept 70W internal reformingmethanol fuel cell system. Journal of Power Sources, 307 875-882 (2016)
Acknowledgment: Financial support from the Fuel Cell and Hydrogen Joint Undertaking (FCH JU), program "Development of a Portable Internal Reforming Methanol High Temperature PEM Fuel Cell System" IRMFC-FCH-JU-325358 is acknowledged.
Title: (Invited) Crosslinked High Temperature Polymer Electrolyte Membranes
Description:
High temperature polymer electrolyte membranes containing basic units that are able to interact with strong protic acids providing ionically conductive composite membrane have shown respectable performance and long operational stability.
Further increase of the operation temperature and even an increase on the obtained conductivity values would facilitate the construction of efficient systems providing both electricity and heat, increasing thus the total efficiency.
Initial attempts to stabilize the HTPEM electrolyte membranes through covalent crosslinking have proven that the operation temperature can be shifted up to 220oC 1,2.
Different crosslinking methodologies have been tested to stabilize either PBI or aromatic polyethers bearing pyridine units3,4.
In the present work we focused on the optimization of the crosslinking methodology using side double bonds and we also develop new crosslinking methodologies leading to wholly aromatic crosslinked structures.
Different type of crosslinkers have been used, controlling thus the acid doping ability of the final membranes while the use of dopable crosslinkers that enable the high acid uptake and retention.
Moreover, depending on the chemical structure of the crosslinked membranes, a significant increase of the conductivity values of the final acid doped composite membranes was obtained.
High temperature operation as the one achieved here enables the use of liquid feed like methanol in a compact methanol reformer-high temperature PEM fuel Cell setup that is under construction and testing5.
References: 1.
K.
D.
Papadimitriou, F.
Paloukis, S.
G.
Neophytides, J.
K.
Kallitsis, “Cross-Linking of Side Chain Unsaturated Aromatic Polyethers for High Temperature Polymer Electrolyte Membrane Fuel Cell Applications” Macromolecules 44, 4942–4951 (2011)
2.
C.
I Morfopoulou, A.
K.
Andreopoulou, M.
K.
Daletou, S.
G.
Neophytides J.
K.
Kallitsis “Cross-linked high temperature polymer electrolytes through oxadiazole bond formation and their applications in HT PEM fuel cells” Journal of Materials Chemistry A: Materials for Energy and Sustainability1 (5) 1613-1622, (2013)
3.
“Pyridine Containing Aromatic Polyether Membranes” J.
K Kallitsis, A.
K Andreopoulou, M.
Daletou, S.
Neophytides; in “Part I: Approaches to HTPEM Fuel Cells” of “High Temperature Polymer Electrolyte Fuel Cells - Approaches, Status and Perspectives” Springer International Publishing AG, Cham; Edited by J.
O.
Jensen, D.
Aili, H.
A.
Hjuler, Q.
Li, 2016.
4.
K.
D.
Papadimitriou, M.
Geormezi, S.
G.
Neophytides, J.
K.
Kallitsis “Covalent cross-linking in phosphoric acid of pyridine based aromatic polyethers bearing side double bonds for use in high temperature polymer electrolyte membrane fuel cells’ Journal of Membrane Science 433, 1–9 (2013)
5.
G.
Avgouropoulos, S.
Schlicker, K.
-P.
Schelhaas, J.
Papavasiliou , K.
D.
Papadimitriou, E.
Theodorakopoulou, N.
Gourdoupi, A.
Machocki, T.
Ioannides, J.
K.
Kallitsis, G.
Kolb, S.
Neophytides “Performance evaluation of a proof-of-concept 70W internal reformingmethanol fuel cell system.
Journal of Power Sources, 307 875-882 (2016)
Acknowledgment: Financial support from the Fuel Cell and Hydrogen Joint Undertaking (FCH JU), program "Development of a Portable Internal Reforming Methanol High Temperature PEM Fuel Cell System" IRMFC-FCH-JU-325358 is acknowledged.
Related Results
7
th
International Symposium on Enabling Technologies for Life Sciences (ETP)
7
th
International Symposium on Enabling Technologies for Life Sciences (ETP)
The seventh in the series of ETP Symposia (see
Rapid Communications in Mass Spectrometry
2012,
26
, ...
The effects of nanoclay on thermal, mechanical and rheological properties of LLDPE/chitosan blend
The effects of nanoclay on thermal, mechanical and rheological properties of LLDPE/chitosan blend
Abstract
The objective of this study was to prepare linear low density polyethylene (LLDPE)/chitosan/closite nanocomposites by using various concentrations of LLDPE,...
Use of Organic Solvent Nanofiltration (OSN) membranes for Counter-Current Chromatography (CCC) solvent recovery
Use of Organic Solvent Nanofiltration (OSN) membranes for Counter-Current Chromatography (CCC) solvent recovery
Solvent resistant membranes are a relatively new technology which has the potential to expand the possible utilities of membranes for process industries. Little is known in terms o...
(Invited) Polymer Electrolytes Based on Ionic Liquids for PEMFC and Lithium Batteries
(Invited) Polymer Electrolytes Based on Ionic Liquids for PEMFC and Lithium Batteries
Ionic liquids (IL) are considered as hi-tech new media with emerging applications as solvents for organic reactions or as electrolytes. The organization degree in these complex flu...
Nanogold and nanosilver hybrid polymer materials
Nanogold and nanosilver hybrid polymer materials
<p>Significant opportunities exist in both the scientific and industrial sectors for the development of new generation hybrid materials. These multifunctional hybrid material...
Extending Polymer Flooding Towards High-Temperature and High-Salinity Carbonate Reservoirs
Extending Polymer Flooding Towards High-Temperature and High-Salinity Carbonate Reservoirs
Abstract
Polymer flooding is a mature EOR technique successfully applied in both sandstone and carbonate reservoirs. ADNOC has developed a new EOR roadmap with the o...
Improved Electrochemical Performance of an All Solid-State Microbattery By Electrodeposition of Polymer Electrolyte into the Nanostructured Electrodes
Improved Electrochemical Performance of an All Solid-State Microbattery By Electrodeposition of Polymer Electrolyte into the Nanostructured Electrodes
The miniaturization of Lithium ion batteries (LIBs) as a power source to drive small devices such as smartcards, medical implants, sensors, radio-frequency identification (RFID) ta...
Ceramic-Polymer Composite Membranes for Water and Wastewater Treatment: Bridging the Big Gap between Ceramics and Polymers
Ceramic-Polymer Composite Membranes for Water and Wastewater Treatment: Bridging the Big Gap between Ceramics and Polymers
Clean water supply is an essential element for the entire sustainable human society, and the economic and technology development. Membrane filtration for water and wastewater treat...

