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A novel strategy to enhance hydrothermal stability of Pd-doped organosilica membrane for hydrogen separation

Microporous and Mesoporous Materials, ISSN: 1387-1811, Vol: 253, Page: 55-63
2017
  • 19
    Citations
  • 0
    Usage
  • 15
    Captures
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    Mentions
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Metrics Details

  • Citations
    19
    • Citation Indexes
      19
  • Captures
    15

Article Description

Pd-doped organosilica (POS) membranes are calcined in N 2 and steam atmospheres for hydrogen separation. Chemical compositions and microstructures of the membranes are characterized by X-ray photoelectron spectroscopy (XPS), transmission electron microscopy (TEM), Fourier transform infrared spectra (FTIR) and N 2 absorption-desorption measurement. Gas separation performances and hydrothermal stabilities of the membranes are also evaluated and compared. The membrane calcined in steam atmosphere (i.e. POS-S membrane) shows a high H 2 permeance (2.5 × 10 −7  mol·m −2 ·s −1 ·Pa −1 ) and H 2 /CO 2 permselectivity (9.2, doubles the Knudsen diffusion factor 4.69). Notably, compared with the POS membrane calcined in N 2, the POS-S membrane displays more excellent hydrothermal stability throughout a 190-h test, which is superior to most silica-derived membranes reported. The significantly enhanced hydrothermal stability is mainly attributed to the low content of unstable moieties in the POS network after steam calcination. Steam conditions make unstable intermediate Pd oxide transfer into stable PdO and reduce content of inorganic moieties during the calcination, leading to high hydrothermal stability of the membrane. Therefore, calcination in steam atmosphere may offer an effective strategy to develop desirable POS membranes with high separation performances and excellent hydrothermal stabilities for practical hydrogen separation.

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