Single-Walled Zeolitic Nanotubes: Advantaged Supports for Poly(ethylenimine) in CO2 Separation from Simulated Air and Flue Gas

  • Gabriel N. Short
  • , Enerelt Burentugs
  • , Laura Proaño
  • , Hyun June Moon
  • , Guanhe Rim
  • , Iman Nezam
  • , Akshay Korde
  • , Sankar Nair
  • , Christopher W. Jones

Research output: Contribution to journalArticlepeer-review

44 Scopus citations

Abstract

Previous research has demonstrated that amine polymers rich in primary and secondary amines supported on mesoporous substrates are effective, selective sorbent materials for removal of CO2 from simulated flue gas and air. Common substrates used include mesoporous alumina and silica (such as SBA-15 and MCM-41). Conventional microporous materials are generally less effective, since the pores are too small to support low volatility amines. Here, we deploy our newly discovered zeolite nanotubes, a first-of-their-kind quasi-1D hierarchical zeolite, as a substrate for poly(ethylenimine) (PEI) for CO2 capture from dilute feeds. PEI is impregnated into the zeolite at specific organic loadings. Thermogravimetric analysis and porosity measurements are obtained to determine organic loading, pore filling, and surface area of the supported PEI prior to CO2 capture studies. MCM-41 with comparable pore size and surface area is also impregnated with PEI to provide a benchmark material that allows for insight into the role of the zeolite nanotube intrawall micropores on CO2 uptake rates and capacities. Over a range of PEI loadings, from 20 to 70 w/w%, the zeolite allows for increased CO2 capture capacity over the mesoporous silica by ∼25%. Additionally, uptake kinetics for nanotube-supported PEI are roughly 4 times faster than that of a comparable PEI impregnated in SBA-15. It is anticipated that this new zeolite will offer numerous opportunities for engineering additional advantaged reaction and separation processes.

Original languageEnglish
Pages (from-to)62-69
Number of pages8
JournalJACS Au
Volume3
Issue number1
DOIs
StatePublished - Jan 23 2023

Funding

This work was supported by the William R. McLain Faculty Endowment and the John F. Brock III Faculty Endowment at Georgia Tech. Solid-state NMR experiments were conducted at the Georgia Tech NMR Center. Materials characterization was performed in part at the Materials Characterization Facility (MCF) at Georgia Tech. The MCF is jointly supported by the GT Institute for Materials (IMat) and the Institute for Electronics and Nanotechnology (IEN), which is a member of the National Nanotechnology Coordinated Infrastructure supported by the National Science Foundation (Grant ECCS-2025462). H.J.M. was additionally supported by Kwanjeong Educational Foundation.

Keywords

  • 1D zeolite
  • adsorption
  • amine
  • DAC
  • direct air capture
  • flue gas
  • nanotube
  • porous materials

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