Justin Flory, Samantha Taylor, Shuqin Li, Sunil Tiwari, Garrett M Cole, Amory Lowe, Lindsey Hamblin, Samuel Piorkowski, Matthew Ryan, Thiago Stangherlin Barbosa, Jason Kmon, Nick Lowery, Joel Eliston, Jason C Quinn, John McGowen, Matthew D Green, Klaus S Lackner, Wim F J Vermaas
Two direct air capture (DAC) systems were designed and demonstrated to passively capture CO2 from ambient air and use moisture to release the CO2 into an alkaline medium. A bench-scale system delivering ∼1 g CO2 d-1 was demonstrated in a laminar flow hood, and a small pilot-scale system that could deliver ∼100 g CO2 d-1 was operated outdoors in a 4.2 m2 raceway pond. Novel elongated mesh-tube packets containing anion-exchange resin (AER) beads were found to reduce drying and CO2 loading time 4.3-fold compared to larger mesh bags. Technoeconomic analysis (TEA) estimates the cost of capturing CO2 into an alkaline solution, suitable for cultivating photosynthetic microorganisms, to be $229 per tonne for a practical scenario based on current results and $72 per tonne for an aspirational scenario considering improvements to sorbent capacity, hydrophobicity, and sorbent lifetime. TEA further estimates an additional $110 per tonne to extract CO2 from solution, purify it, and compress it to 15 MPa, suitable for sequestration. Moisture-driven processes have the potential to use up to 87% less energy than thermal and/or vacuum swing DAC by using energy from water evaporation.