Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Invited: Development of Highly Phosphonated Polymers for Fuel Cell Membranes

View through CrossRef
Phosphonated polymers may show high intrinsic proton conductivities at low water contents provided that the local concentration of phosphonic acid groups is very high [1,2]. Moreover, the lower acidity of aryl- and alkylphosphonic acids in relation to sulfonic acids requires higher acid contents to reach high conductivities also at higher water contents. In this context, poly(vinylphosphonic acid) (PVPA) has emerged as an interesting component for fuel cell membranes because of its extremely high concentration of phosphonic acid, corresponding to 9.25 mmol –PO3H2 per g dry material. However, the high ionic content leads to complete water solubility as well as poor mechanical properties in the solid state. Consequently, it is necessary to develop synthetic strategies to efficiently immobilize the PVPA in the membranes before practical use. We have previously immobilized PVPA by preparing various block and graft copolymers with PVPA segments [3]. These copolymers where found to self-assemble and form robust membranes with nanostructured morphologies and high proton conductivities. Very recently we have pursued a number of novel synthetic strategies towards different highly phosphonated membranes. These approaches include phosphonated norbornene copolymers prepared via ring opening metathesis polymerization (ROMP) [4], multiblock copolymers selectively grafted with PVPA via anionic polymerization [5], as well as block and graft copolymers containing the more acidic poly(tetrafluorostyrenephosphonic acid) via atom transfer radical polymerization (ATRP) [6]. Challenges and selected results on the synthesis and properties of these copolymers and membranes will be presented and discussed along with future prospects. Acknowledgement We gratefully acknowledge the financial support from the Danish Council for Strategic Research through contract no.09-065198, as well as the funding from the European Community’s Seventh Framework Programme (FP7/2010–2013) under the call ENERGY-2010-10.2-1: Future Emerging Technologies for Energy Applications (FET) under contract 256821 QuasiDry. References [1] Steininger, H. Schuster, M., Kreuer, K. D., Kaltbeitzel, A., Bingol, B., Meyer, W. H., Schauff, S.,Brunklaus, G., Maier, J.,Spiess, H. W., Phys. Chem. Phys., 2007, 9, 1764. [2] Bingöl, B., Jannasch, P., Proton Conducting Phosphonated Polymers and Membranes for Fuel Cells, in Phosphorus-Based Polymers - From Synthesis to Applications, ed. S. Monge and G. David, 2014, Royal Society of Chemistry, in press. [3] a) Perrin, R., Elomaa, M., Jannasch, P., Macromolecules, 2009, 42, 5146, b) Parvole, J., Jannasch, P. Macromolecules 2008, 41, 3893, c) Ingratta, M., Elomaa, M., Jannasch, P. Polym. Chem., 2010, 1, 739. [4] Bingol, B., Kroeger, A., Jannasch, P., Polymer, 2013, 54, 6676. [5] Sannigrahi, A., Takamuku, S., Jannasch, P., Polym. Chem., 2013, 4, 4207. [6] Dimitrov, I., Takamuku, S., Jankova, K., Jannasch, P., Hvilsted, S., J. Membr. Sci., 2014, 450, 362.
The Electrochemical Society
Title: Invited: Development of Highly Phosphonated Polymers for Fuel Cell Membranes
Description:
Phosphonated polymers may show high intrinsic proton conductivities at low water contents provided that the local concentration of phosphonic acid groups is very high [1,2].
Moreover, the lower acidity of aryl- and alkylphosphonic acids in relation to sulfonic acids requires higher acid contents to reach high conductivities also at higher water contents.
In this context, poly(vinylphosphonic acid) (PVPA) has emerged as an interesting component for fuel cell membranes because of its extremely high concentration of phosphonic acid, corresponding to 9.
25 mmol –PO3H2 per g dry material.
However, the high ionic content leads to complete water solubility as well as poor mechanical properties in the solid state.
Consequently, it is necessary to develop synthetic strategies to efficiently immobilize the PVPA in the membranes before practical use.
We have previously immobilized PVPA by preparing various block and graft copolymers with PVPA segments [3].
These copolymers where found to self-assemble and form robust membranes with nanostructured morphologies and high proton conductivities.
Very recently we have pursued a number of novel synthetic strategies towards different highly phosphonated membranes.
These approaches include phosphonated norbornene copolymers prepared via ring opening metathesis polymerization (ROMP) [4], multiblock copolymers selectively grafted with PVPA via anionic polymerization [5], as well as block and graft copolymers containing the more acidic poly(tetrafluorostyrenephosphonic acid) via atom transfer radical polymerization (ATRP) [6].
Challenges and selected results on the synthesis and properties of these copolymers and membranes will be presented and discussed along with future prospects.
Acknowledgement We gratefully acknowledge the financial support from the Danish Council for Strategic Research through contract no.
09-065198, as well as the funding from the European Community’s Seventh Framework Programme (FP7/2010–2013) under the call ENERGY-2010-10.
2-1: Future Emerging Technologies for Energy Applications (FET) under contract 256821 QuasiDry.
References [1] Steininger, H.
Schuster, M.
, Kreuer, K.
D.
, Kaltbeitzel, A.
, Bingol, B.
, Meyer, W.
H.
, Schauff, S.
,Brunklaus, G.
, Maier, J.
,Spiess, H.
W.
, Phys.
Chem.
Phys.
, 2007, 9, 1764.
[2] Bingöl, B.
, Jannasch, P.
, Proton Conducting Phosphonated Polymers and Membranes for Fuel Cells, in Phosphorus-Based Polymers - From Synthesis to Applications, ed.
S.
Monge and G.
David, 2014, Royal Society of Chemistry, in press.
[3] a) Perrin, R.
, Elomaa, M.
, Jannasch, P.
, Macromolecules, 2009, 42, 5146, b) Parvole, J.
, Jannasch, P.
Macromolecules 2008, 41, 3893, c) Ingratta, M.
, Elomaa, M.
, Jannasch, P.
Polym.
Chem.
, 2010, 1, 739.
[4] Bingol, B.
, Kroeger, A.
, Jannasch, P.
, Polymer, 2013, 54, 6676.
[5] Sannigrahi, A.
, Takamuku, S.
, Jannasch, P.
, Polym.
Chem.
, 2013, 4, 4207.
[6] Dimitrov, I.
, Takamuku, S.
, Jankova, K.
, Jannasch, P.
, Hvilsted, S.
, J.
Membr.
Sci.
, 2014, 450, 362.

Related Results

Complex Collision Tumors: A Systematic Review
Complex Collision Tumors: A Systematic Review
Abstract Introduction: A collision tumor consists of two distinct neoplastic components located within the same organ, separated by stromal tissue, without histological intermixing...
Analisis Perbandingan Fuel Consumtption Pada Pesawat boeing B737-800 Rute CGK-DMK dan CGK-AMQ
Analisis Perbandingan Fuel Consumtption Pada Pesawat boeing B737-800 Rute CGK-DMK dan CGK-AMQ
Fuel consumption merupakan perhitungan konsumsi bahan bakaryang digunakan pesawat udara melalui dua engine, perhitungan ini akan mengetahui banyaknya fuel yang digunakan oleh pesaw...
Frequency of Common Chromosomal Abnormalities in Patients with Idiopathic Acquired Aplastic Anemia
Frequency of Common Chromosomal Abnormalities in Patients with Idiopathic Acquired Aplastic Anemia
Objective: To determine the frequency of common chromosomal aberrations in local population idiopathic determine the frequency of common chromosomal aberrations in local population...
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...
The Adventitious-Pin-Failure Study Under a Slow Power Ramp
The Adventitious-Pin-Failure Study Under a Slow Power Ramp
In a fast breeder reactor, a slow power ramp accident could lead to a local melting of the fuel depending on design and assumptions. If we assume cladding failure in addition to th...
Barrier Polymers
Barrier Polymers
AbstractBarrier polymers are used for many packaging and protective applications. As barriers they separate a system, such as an article of food or an electronic component, from an...
Barrier Polymers
Barrier Polymers
AbstractBarrier polymers are used for many packaging and protective applications. As barriers they separate a system, such as an article of food or an electronic component, from an...
Sulfur‐Containing Polymers
Sulfur‐Containing Polymers
AbstractThis review describes methods of synthesis and some more interesting properties of the various new sulfur‐containing polymers, with particular regard for their potential ap...

Back to Top