4.7 Article

Synthesis of hierarchical porous Zeolite-Y for enhanced CO2 capture

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ELSEVIER
DOI: 10.1016/j.micromeso.2020.110261

关键词

Zeolite-Y; Bifunctional polymer; Hierarchical porous structure; CO2 adsorption; Separation

资金

  1. ADNOC refining, ADNOC, Abu Dhabi, UAE
  2. Khalifa University of Science and Technology [RC22018-024]

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In the present study, a facile and one step approach has been developed for the synthesis of hierarchical porous zeolite-Y using bifunctional cationic polymer, polydiallyldimethyl ammonium chloride (PDDA) as a mesopore directing template. The effects of various synthesis parameters such as hydrothermal reaction temperature, time, amount of PDDA and NaOH were systematically investigated to produce crystalline and hierarchical zeolite-Y crystals (PDYs). All the synthesized zeolite-Y samples were characterized by XRD, FT-IR, SEM, EDAX, TEM, TGA, CO2-TPD and Nitrogen adsorption-desorption measurements. The characterization results showed that the zeolite-Y samples synthesized at optimized ratios of PDDA/Al2O3 and NaOH/Al2O3 exhibited higher crystallinity, higher BET surface area and larger total pore volume in comparison to the sample synthesized in the absence of the template (ZY). Interestingly, the hierarchical porous zeolite-Y samples (PDY-7) displayed substantial enhancement in CO2 adsorption capacity (5.40 mmol/g) at 298 K and 100 kPa as compared to the non-templated one (ZY) (4.5 mmol/g). The effective improvement in CO(2 )adsorption performance of PDY samples is attributed to the existence of interconnected micro-meso channel network, the higher total pore volume and higher concentration of acid-base sites (due to the lower Si/Al ratio). Owing to the higher CO(2 )adsorption capacity, the PDY samples also displayed high equilibrium selectivity for CO2 over N-2 (similar to 250) as well as over CH4 (similar to 110) at 298 K. The enhanced CO2 adsorption capacity combined with the high CO(2 )adsorption selectivity renders the hierarchical zeolite-Y an excellent contender for the efficient CO(2 )capture.

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