4.8 Article

SO42-/SnO2 Solid Superacid Granular Stacked One-Dimensional Hollow Nanofiber for a Highly Conductive Proton-Exchange Membrane

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 12, Issue 36, Pages 40740-40748

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.0c09122

Keywords

ionic nanochannels; tin oxide; SPPESK; proton exchange membrane; hollow nanofiber

Funding

  1. National Science Foundation of China [21776034, U1663223]
  2. National Key Research and Development Program of China [2016YFB0101203]
  3. Education Department of the Liaoning Province of China [LT2015007]
  4. Fundamental Research Funds for the Central Universities [DUT16TD19]
  5. Changjiang Scholars Program [T2012049]

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A novel sulfated tin oxide solid superacid granular stacked one-dimensional (1D) hollow nanofiber (SO42-/FSnO2) is proposed as a nanofiller in sulfonated poly(phthalazinone ether sulfone ketone) (SPPESK) to manipulate a highly conductive proton nanochannel. It has unique microstructures with an open-end hollow nanofibric morphology and grain-stacked single-layer mesoporous fiber wall, which greatly enlarge the specific surface area and aspect ratio. The diverse acid sites, that is, SO42-, Sn-OH Bronsted, and Sn4+ Lewis superacids, provide a high concentration of strong acidic proton carriers on the nanofiber surface and dynamically abundant hydrogen bonds for rapid proton transfer and interfacial interactions with -SO3H groups in the SPPESK along the 1D hollow nanofiber. As a result, long-range orientated ionic clusters are observed in the SO42-/FSnO2 incorporated membrane, leading to simultaneous enhancement of proton conductivity (226.7 mS/cm at 80 degrees C), mechanical stability (31.4 MPa for the hydrated membrane), fuel permeation resistance, and single-cell performance (936.5 and 147.3 mW/cm(2) for H-2/O-2 and direct methanol fuel cells, respectively). The superior performance, as compared with that of the zero-dimensional nanoparticle-incorporated membrane, Nafion 115, and previously reported SPPESK-based membranes, suggests a great potential of elaborating superstructural 1D hollow nanofillers for highly conductive proton-exchange membranes.

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