| Literature DB >> 26610582 |
Antonino S Aricò1, David Sebastian2, Michael Schuster3, Bernd Bauer4, Claudia D'Urso5, Francesco Lufrano6, Vincenzo Baglio7.
Abstract
Sulfonic acid-functionalized polymer electrolyte membranes alternative to Nafion(®) were developed. These were hydrocarbon systems, such as blend sulfonated polyetheretherketone (s-PEEK), new generation perfluorosulfonic acid (PFSA) systems, and composite zirconium phosphate-PFSA polymers. The membranes varied in terms of composition, equivalent weight, thickness, and filler and were investigated with regard to their methanol permeation characteristics and proton conductivity for application in direct methanol fuel cells. The behavior of the membrane electrode assemblies (MEA) was investigated in fuel cell with the aim to individuate a correlation between membrane characteristics and their performance in a direct methanol fuel cell (DMFC). The power density of the DMFC at 60 °C increased according to a square root-like function of the membrane selectivity. This was defined as the reciprocal of the product between area specific resistance and crossover. The power density achieved at 60 °C for the most promising s-PEEK-based membrane-electrode assembly (MEA) was higher than the benchmark Nafion(®) 115-based MEA (77 mW·cm(-2) vs. 64 mW·cm(-2)). This result was due to a lower methanol crossover (47 mA·cm(-2) equivalent current density for s-PEEK vs. 120 mA·cm(-2) for Nafion(®) 115 at 60 °C as recorded at OCV with 2 M methanol) and a suitable area specific resistance (0.15 Ohm cm² for s-PEEK vs. 0.22 Ohm cm² for Nafion(®) 115).Entities:
Keywords: direct methanol fuel cells; fuel cell performance; membrane selectivity; methanol crossover; proton conductivity; proton exchange polymer electrolyte membranes
Year: 2015 PMID: 26610582 PMCID: PMC4704012 DOI: 10.3390/membranes5040793
Source DB: PubMed Journal: Membranes (Basel) ISSN: 2077-0375
Ex situ characterization data of the most promising Fumatech membranes for each category compared to Nafion® 115.
| Membrane Acronym | Unit | F-1850 | E-730 | FZP-960 | FX-7050 | N-115 |
|---|---|---|---|---|---|---|
| Polymer Type | PFSA | sPEEK | PFSA-ZrP | PFSA Cross-Linked | PFSA | |
| Filler content | – | – | – | 10% | – | – |
| EW (theoretical) | g/mol | 1800 | 740 | 950 | 7000 | 1100 |
| IEC (exp.) | mmol/g | 0.50 | 1.35 | 0.83 | 0.63 | 0.9 |
| Thickness (dry) | µm | 50 | 30 | 60 | 50 | 125 |
| Solvent uptake in MeOH at 25 °C | Wt % | 30 | 38 | 115 | 33 | 54 |
| Length increase Δl in MeOH at 25 °C | % | 18 | 10 | 46 | 8 | 31 |
| Conductivity in H2O at T = 25 °C | mS·cm−1 | 58 | 16 | 23 | 56 | 62 |
Figure 1Methanol crossover for selected membranes under different operating conditions of temperature and methanol concentration; crossover was here determined at open circuit voltage (OCV) during normal DMFC operation by measuring the CO2 evolved at the cathode using an in-line chromatograph.
Figure 2Polarization and power density curves for different membranes in MEAs at 60 °C, 2 M methanol.
Figure 3Polarization and power density curves for the different membranes in MEAs at 90 °C, 2 M methanol.
Electrochemical characteristics of the membranes in DMFC (2M CH3OH).
| Membrane Acronym | Units | E-730 | E-750 | F-1850 | F-18120 | F-2350 | FZP-960 | FZP-990 | FZP-9110 | FX-7050 | Nafion® 115 |
|---|---|---|---|---|---|---|---|---|---|---|---|
| Polymer Type | s-PEEK | s-PEEK | PFSA | PFSA | PFSA | PFSA-ZrP | PFSA-ZrP | PFSA-ZrP | PFSA Cross-Linked | PFSA | |
| Equivalent weight | g/mol | 700 | 700 | 1800 | 1800 | 2300 | 950 | 950 | 950 | 7000 | 1100 |
| thickness | µm | 30 | 50 | 50 | 120 | 50 | 60 | 90 | 110 | 50 | 125 |
| Max. Power density | mW·cm−2 | 77 | 17 | 74 | 36 | 50 | 64 | 32 | 35 | 42 | 64 |
| @ 60 °C | |||||||||||
| Rs (EIS) | Ω cm2 | 0.20 | 0.62 | 0.20 | 0.50 | 0.31 | 0.085 | 0.29 | 0.33 | 0.13 | 0.17 |
| @ 60 °C | |||||||||||
| Crossover current | mA·cm−2 | 48 | 106 | 120 | 100 | 88 | 128 | 135 | 208 | 186 | 195 |
| @ 60 °C | |||||||||||
| Max. Power density | mW·cm−2 | 145 | 42 | 116 | 64 | 80 | 129 | 55 | 84 | 67 | 167 |
| @ 90 °C | |||||||||||
| Rs (EIS) | Ω cm2 | 0.14 | 0.23 | 0.16 | 0.38 | 0.34 | 0.06 | 0.21 | 0.24 | 0.12 | 0.14 |
| @ 90 °C | |||||||||||
| Crossover current | mA·cm−2 | 74 | 185 | 193 | 123 | 121 | 153 | 162 | 245 | 260 | 380 |
| @ 90 °C |
Figure 4Performance vs. selectivity for MEAs equipped with different membranes at 60 °C (2 M MeOH).
Figure 5Performance vs. selectivity for MEAs equipped with different membranes at 90 °C (2 M MeOH).
Figure 6Ac-impedance plots for selected MEAs equipped with different membranes at 60 °C (2 M MeOH, 75 mA·cm−2).
Figure 7Fumatech membranes varying in terms of equivalent weight and preparation procedures for DMFC applications.