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H2O and CO2Sorption in Ion-Exchange Sorbents: Distinct Interactions in Amine Versus Quaternary Ammonium Materials

  • Golnaz Najaf Tomaraei
  • , Sierra Binney
  • , Ryan Stratton
  • , Houlong Zhuang
  • , Jennifer L. Wade

Research output: Contribution to journalArticlepeer-review

Abstract

This study investigates the H2O and CO2sorption behavior of two chemically distinct polystyrene-divinylbenzene-based ion exchange sorbents: a primary amine and a permanently charged strong base quaternary ammonium (QA+) group with (bi)carbonate counter anions. We compare their distinct interactions with H2O and CO2through simultaneous thermal gravimetric, calorimetric, gas analysis, and molecular modeling approaches to evaluate their performance for dilute CO2separations like direct air capture. Thermal and hybrid (heat + low-temperature hydration) desorption experiments demonstrate that the QA+-based sorbent binds both water and CO2more strongly than the amine counterparts but undergoes degradation at moderate temperatures, limiting its compatibility with thermal swing regeneration. However, a low-temperature moisture-driven regeneration pathway is uniquely effective for the QA+-based sorbent. To inform the energetics of a moisture-based CO2separation (i.e., a moisture swing), we compare calorimetric water sorption enthalpies to Clausius–Clapeyron-derived total isosteric enthalpies. To our knowledge, this includes the first direct calorimetric measurement of water sorption enthalpy in a QA+-based sorbent. Both methods reveal monolayer-multilayer sorption behavior for both sorbents, with the QA+-based material having slightly higher water sorption enthalpies at the initially occupied strongest sorption sites. Molecular modeling supports this observation, showing higher water sorption energies and denser charge distributions in the QA+-based sorbent at λH2O= 1 mmol/mmolsite. Mixed gas experiments in the QA+-based sorbent show that not only does water influence CO2binding, but CO2influences water uptake through counterion-dependent hydration states, and that moisture swing responsiveness in this material causes hydration-induced CO2release and drying-induced CO2uptake, an important feature for low-energy CO2separation under ambient conditions. Overall, the two classes of sorbents offer distinct pathways for the CO2separation.

Original languageEnglish (US)
Pages (from-to)53547-53562
Number of pages16
JournalACS Applied Materials and Interfaces
Volume17
Issue number38
DOIs
StatePublished - Sep 24 2025
Externally publishedYes

Keywords

  • calorimetry
  • chemisorption
  • Clausius–Clapeyron
  • COseparation
  • direct air capture
  • GAB model
  • primary amine
  • quaternary ammonium
  • sorption isotherm
  • thermal gravimetric analysis

ASJC Scopus subject areas

  • General Materials Science

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