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Understanding and Mitigating Degradation in Amine-Based Sorbents for CO2 Direct Air Capture: Article No. 102958

  • Anthony Varni
  • , Wade Braunecker
  • , Marcos Calegari Andrade
  • , G. Michael Carroll
  • , Yoseph Guta
  • , Elwin Hunter-Sellars
  • , Christopher Jones
  • , Noemi Leick
  • , Sichi Li
  • , Amitesh Maiti
  • , Maxwell Marple
  • , Hyun June Moon
  • , Miles Sakwa-Novak
  • , Carsten Sievers
  • , Nicholas Strange
  • , Simon Pang
  • Lawrence Livermore National Laboratory
  • Georgia Institute of Technology
  • Virdis Systems, Inc.
  • SLAC National Accelerator Laboratory

Research output: Contribution to journalArticlepeer-review

13 Scopus Citations

Abstract

The success of direct air capture (DAC) of CO2 depends on sorbents that combine high capacity, low energy requirements, and long-term durability. Amine-based sorbents-including solid-supported aminopolymers, grafted amines, and amine-functionalized resins-remain the leading candidates, but their limited lifetimes drive up costs and constrain deployment. In this review, we outline the current understanding of amine-based sorbent degradation with an emphasis on clearly identifying what is known about structure-property-performance relationships, as well as important knowledge gaps. More specifically, we discuss how polymer chemistry, sorbent design variables, and environmental and process conditions contribute to performance loss. In parallel, we outline how advances in spectroscopy, modeling, and accelerated testing are beginning to illuminate chemical and physical degradation mechanisms. Looking forward, we identify future research directions that will be critical for gaining a deeper understanding of degradation, as well as opportunities for developing innovative mitigation strategies for improving the lifetime of amine-based sorbents.
Original languageAmerican English
Number of pages22
JournalChem
Volume12
Issue number3
DOIs
StatePublished - 2026

NLR Publication Number

  • NLR/JA-5900-96270

Keywords

  • aminopolymer
  • direct air capture
  • oxidation
  • polymer degradation

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