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Side chain flexibility in perfluorosulfonic acid ionomers: an ab initio study
Jeffrey K Clark1, Stephen J Paddison
1Department of Chemical and Biomolecular Engineering, University of Tennessee , Knoxville, Tennessee 37996, United States.
Side chain flexibility in perfluorosulfonic acid (PFSA) ionomers was studied using electronic structure calculations. The carbon-sulfur bond is most flexible, with solvent effects enhancing this. Minor structural changes significantly impact flexibility.
Area of Science:
- Materials Science
- Computational Chemistry
- Polymer Science
Background:
- Perfluorosulfonic acid (PFSA) ionomers are crucial for electrochemical applications.
- Understanding side chain flexibility is key to optimizing ionomer performance.
- Previous studies have not fully explored the conformational dynamics of different PFSA side chains.
Purpose of the Study:
- To investigate the side chain flexibility of three distinct PFSA ionomers: Nafion, Aquivion (short side chain - SSC), and 3M PFSA.
- To determine the influence of solvent effects on the rotational potential energy surfaces of these side chains.
- To compare the conformational freedom and energetic landscapes of different PFSA side chain structures.
Main Methods:
- Ab initio electronic structure calculations using density functional theory (DFT).
- Employed B3LYP and B97D functionals, with and without a solvation model.
- Calculated rotational potential energy surfaces for bonds along the PFSA side chains.
Main Results:
- The carbon-sulfur bond exhibits the highest flexibility, further enhanced by solvent inclusion.
- Nafion side chains show substantial conformational freedom despite some high-energy barriers.
- The 3M PFSA side chain is the most rigid, with significant rotational barriers around its central carbon-carbon bonds.
Conclusions:
- Side chain length and chemical structure significantly influence rotational potential energy surfaces in PFSA ionomers.
- Solvent effects are more pronounced near the sulfonic acid group than the backbone.
- Conformational flexibility, particularly of the C-S bond, is a critical factor in PFSA ionomer behavior.
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