4.8 Article

Electrical conductivity, ionic conductivity, optical absorption, and gas separation properties of ionically conductive polymer membranes embedded with Si microwire arrays

期刊

ENERGY & ENVIRONMENTAL SCIENCE
卷 4, 期 5, 页码 1772-1780

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/c1ee01028j

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资金

  1. Department of Energy, Office of Basic Energy Sciences [DE-FG02-07ER46405]
  2. DARPA [W911NF-09-2-0011]
  3. Caltech Center for Science and Engineering of Materials
  4. NSF MRSEC
  5. Caltech Center for Sustainable Energy Research
  6. Army Research Laboratory [LCHS22067]
  7. NSF-ACCF [CHE-0937048]
  8. Division Of Chemistry
  9. Direct For Mathematical & Physical Scien [0937048] Funding Source: National Science Foundation

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The optical absorption, ionic conductivity, electronic conductivity, and gas separation properties have been evaluated for flexible composite films of ionically conductive polymers that contain partially embedded arrays of ordered, crystalline, p-type Si microwires. The cation exchange ionomer Nafion, and a recently developed anion exchange ionomer, poly(arylene ether sulfone) that contains quaternary ammonium groups (QAPSF), produced composite microwire array/ionomer membrane films that were suitable for operation in acidic or alkaline media, respectively. The ionic conductivity of the Si wire array/Nafion composite films in 2.0 M H2SO4(aq) was 71 mS cm(-1), and the conductivity of the Si wire array/QAPSF composite films in 2.0 M KOH(aq) was 6.4 mS cm(-1). Both values were comparable to the conductivities observed for films of these ionomers that did not contain embedded Si wire arrays. Two Si wire array/Nafion membranes were electrically connected in series, using a conducting polymer, to produce a trilayer, multifunctional membrane that exhibited an ionic conductivity in 2.0 M H2SO4(aq) of 57 mS cm(-1) and an ohmic electrical contact, with an areal resistance of similar to 0.30 Omega cm(2), between the two physically separate embedded Si wire arrays. All of the wire array/ionomer composite membranes showed low rates of hydrogen crossover. Optical measurements indicated very low absorption (< 3%) in the ion-exchange polymers but high light absorption (up to 80%) by the wire arrays even at normal incidence, attesting to the suitability of such multifunctional membranes for application in solar fuels production.

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