Abstract
Molecular dynamics method is used to investigate the mass transfer rules of reactants H 3 O + and O 2 in the cathode catalyst layer in the presence of five kinds of cations (Na + , K + , NH 4 + , Mg 2+ , Ca 2+ ) in the microbial fuel cell solution environment. Structural characteristics of the catalyst layer Pt/C substrate/Nafion/solution three-phase interface are also analyzed. The results show that the transport mechanism and pathway of H 3 O + in the catalyst layer are similar to those of monovalent cations (Na + , K + , NH 4 + ). The minimum diffusion coefficient of H 3 O + appears in the presence of K + . On the other hand, H 3 O + mainly transport inside the water clusters in the presence of divalent cations (Mg 2+ , Ca 2+ ). The diffusion law of metal cations (K + > Na + > Mg 2+ > Ca 2+ ) is still applicable in the catalyst layer containing Nafion ionomer and unaffected by cation concentration. In general, the higher concentration of O 2 molecules in the main part of the Nafion phase and the farther distribution from the carbon substrate cause a larger O 2 diffusion coefficient. Moreover, the O 2 transport pathways in the main part of the Nafion phase are along the Nafion hydrophilic/hydrophobic phase interface and inside the hydrophobic phase. In the presence of Ca 2+ , the concentration of O 2 near the Pt particles is the highest. These O 2 molecules tend to adsorb on the surface of Pt particles with small size. Thus, the catalyst utilization rate is high. In addition, Ca 2+ has a strong cross-linking effect on the sulfonic acid groups from different Nafion molecules, which helps to enhance the stability of the catalyst layer.
Original language | English |
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Pages (from-to) | 404-416 |
Number of pages | 13 |
Journal | Electrochimica Acta |
Volume | 300 |
DOIs | |
Publication status | Published - 20 Mar 2019 |
Externally published | Yes |
Keywords
- Catalyst layer
- Impurity cation
- Molecular dynamics simulation
- Pt nanoparticle
- Three-phase interface