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플렉서블한 금속-유기 골격체(MOFs)를 활용한 메탄/질소 분리

CH4/N2 Separation on Flexible Metal-Organic Frameworks(MOFs)

  • 정민지 (국립경남과학기술대학교 에너지공학과) ;
  • 박재우 (국립경남과학기술대학교 에너지공학과) ;
  • 오현철 (국립경남과학기술대학교 에너지공학과)
  • Jung, Minji (Department of Energy Engineering, Gyeongnam National University of Science and Technology) ;
  • Park, Jawoo (Department of Energy Engineering, Gyeongnam National University of Science and Technology) ;
  • Oh, Hyunchul (Department of Energy Engineering, Gyeongnam National University of Science and Technology)
  • 투고 : 2018.08.04
  • 심사 : 2018.08.20
  • 발행 : 2018.09.27

초록

Nitrogen is a serious contaminant in natural gas because it decreases the energy density. The natural gas specification in South Korea requires a $N_2$ content of less than 1 mol%. Thus, cost-effective $N_2$ removal technology from natural gas is necessary, but until now the only option has been energy-intensive processes, e.g., cryogenic distillation. Using porous materials for the removal process would be beneficial for an efficient separation of $CH_4/N_2$ mixtures, but this still remains one of the challenges in modern separation technology due to the very similar size of the components. Among various porous materials, metal-organic frameworks (MOFs) present a promising candidate for the potential $CH_4/N_2$ separation material due to their unique structural flexibility. A MIL-53(Al), the most well-known flexible metal-organic framework, creates dynamic changes with closed pore (cp) transitions to open pores (ops), also called the 'breathing' phenomenon. We demonstrate the separation performance of $CH_4/N_2$ mixtures of MIL-53(Al) and its derivative $MIL-53-NH_2$. The $CH_4/N_2$ selectivity of $MIL-53-NH_2$ is higher than pristine MIL-53(Al), suggesting a stronger $CH_4$ interaction with $NH_2$.

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