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Ultrahigh gas storage both at low and high pressures in KOH-activated carbonized porous aromatic frameworks.


ABSTRACT: The carbonized PAF-1 derivatives formed by high-temperature KOH activation showed a unique bimodal microporous structure located at 0.6 nm and 1.2 nm and high surface area. These robust micropores were confirmed by nitrogen sorption experiment and high-resolution transmission electron microscopy (TEM). Carbon dioxide, methane and hydrogen sorption experiments indicated that these novel porous carbon materials have significant gas sorption abilities in both low-pressure and high-pressure environments. Moreover the methane storage ability of K-PAF-1-750 is among the best at 35 bars, and its low-pressure gas adsorption abilities are also comparable to the best porous materials in the world. Combined with excellent physicochemical stability, these materials are very promising for industrial applications such as carbon dioxide capture and high-density clean energy storage.

SUBMITTER: Li Y 

PROVIDER: S-EPMC3741621 | biostudies-literature | 2013

REPOSITORIES: biostudies-literature

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Ultrahigh gas storage both at low and high pressures in KOH-activated carbonized porous aromatic frameworks.

Li Yanqiang Y   Ben Teng T   Zhang Bingyao B   Fu Yao Y   Qiu Shilun S  

Scientific reports 20130101


The carbonized PAF-1 derivatives formed by high-temperature KOH activation showed a unique bimodal microporous structure located at 0.6 nm and 1.2 nm and high surface area. These robust micropores were confirmed by nitrogen sorption experiment and high-resolution transmission electron microscopy (TEM). Carbon dioxide, methane and hydrogen sorption experiments indicated that these novel porous carbon materials have significant gas sorption abilities in both low-pressure and high-pressure environm  ...[more]

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