Climatic Conditions and Amine Loading Impact the Performance of Laminate-Supported Poly(ethylenimine) Direct Air
UnJin Ryu1, Youn Ji Min1, Wenyang Zhao1
1School of Chemical & Biomolecular Engineering, Georgia Institute of Technology, 311 Ferst Dr, Atlanta, Georgia 30332, United States.
Abstract:
Direct air capture (DAC) of CO2 is a critical technology to combat climate change, offering a scalable approach to mitigate atmospheric CO2 accumulation. Despite advancements in adsorbent materials, the performance of DAC systems remains highly sensitive to environmental conditions, such as temperature and humidity. Poly-(ethylenimine) (PEI)-functionalized silica has emerged as a promising sorbent due to its high CO2 capacity and tunable properties. However, optimizing its performance across diverse climatic conditions requires a deeper understanding of how the PEI loading impacts the adsorption capacity and kinetics under varying temperatures and humidities. This study reports the CO2 and H2O adsorption kinetics and capacities, desorption behavior, and speciation of adsorbed CO2 using silica/PEI adsorbents supported within expanded poly-(tetrafluoroethylene) (ePTFE) sheets across a wide range of temperatures and humidities, representing the diversity of climates found across the United States. With the obtained data, guidelines for selecting and optimizing PEI-loaded silica-based sorbents for DAC applications are developed. These findings provide a framework for tailoring sorbents to specific climatic scenarios, ensuring a reliable and efficient DAC performance.


