4.8 Article

Fluorine-Free Precise Polymer Electrolyte for Efficient Proton Transport: Experiments and Simulations

期刊

CHEMISTRY OF MATERIALS
卷 33, 期 15, 页码 6041-6051

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.chemmater.1c01443

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资金

  1. National Science Foundation (NSF) [DMR 1904767, PIRE 1545884]
  2. Vagelos Institute for Energy Science and Technology at the University of Pennsylvania
  3. Agence Nationale de la Recherche (ANR) [ANR-15-PIRE0001-01, ANR-15-PIRE-0001-04]
  4. National Science Foundation [1804871]
  5. Florida State University Energy and Materials Hiring Initiative
  6. U.S. DOE's National Nuclear Security Administration [DE-NA-0003525]
  7. Div Of Chem, Bioeng, Env, & Transp Sys
  8. Directorate For Engineering [1804871] Funding Source: National Science Foundation
  9. Agence Nationale de la Recherche (ANR) [ANR-15-PIRE-0001] Funding Source: Agence Nationale de la Recherche (ANR)

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Designing polymers with controlled nanoscale morphologies and scalable synthesis is important for developing fluorine-free materials for proton-exchange membranes. This study focuses on a precision polyethylene with phenylsulfonic acid branches, which demonstrates high proton conductivity and strong nanophase separation. Molecular dynamics simulations indicate the potential of such precise hydrocarbon-based polymers as processible and effective proton exchange membranes.
Designing polymers with controlled nanoscale morphologies and scalable synthesis is of great interest in the development of fluorine-free materials for proton-exchange membranes in fuel cells. This study focuses on a precision polyethylene with phenylsulfonic acid branches at every fifth carbon, p5PhSA, with a high ion-exchange capacity (4.2 mmol/g). The polymers self-assemble into hydrophilic and hydrophobic co-continuous nanoscale domains. In the hydrated state, the hydrophilic domain, composed of polar sulfonic acid moieties and water, serves as a pathway for efficient mesoscopic proton conductivity. The morphology and proton transport of p5PhSA are evaluated under hydrated conditions using in situ X-ray scattering and electrochemical impedance spectroscopy techniques. At 40 degrees C and 95% relative humidity, the proton conductivity of p5PhSA is 0.28 S/cm, which is four times greater than Nafion 117 under the same conditions. Atomistic molecular dynamics (MD) simulations are also used to elucidate the interplay between the structure and the water dynamics. The MD simulations show strong nanophase separation between the percolated hydrophilic and hydrophobic domains over a wide range of water contents. The percolated hydrophilic nanoscale domain facilitates the rapid proton transport in p5PhSA and demonstrates the potential of precise hydrocarbon-based polymers as processible and effective protonexchange membranes.

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