Evaluating the scale of natural and mechanical airflows for surface-based atmospheric pollutant removal
Tomlinson, Samuel D. ORCID: https://orcid.org/0000-0002-7180-9443, Tsopelakou, Aliki M., Onn, Tzia M., Barrett, Steven R. H., Boies, Adam M. and Fitzgerald, Shaun D.
(2026)
Evaluating the scale of natural and mechanical airflows for surface-based atmospheric pollutant removal.
Environmental Science and Technology, 60 (31).
pp. 21609-21621.
ISSN 013-936X (Print), 1520-5851 (Online)
(doi:10.1021/acs.est.5c16697)
Preview |
PDF (Open Access Article)
54019 TOMLINSON_ Evaluating_The_Scale_Of_Natural_And_Mechanical_Airflows_(OA)_2026.pdf - Published Version Available under License Creative Commons Attribution. Download (13MB) | Preview |
Abstract
Removal strategies for atmospheric pollutants are increasingly being considered to mitigate global warming and improve public health. However, the global potential of surface-based removal techniques has not yet been quantified under atmospheric transport. We evaluate the atmospheric pollutant transport to surfaces and assess the potential of surface-based removal technologies across infrastructure. Cities provide the highest transport-limited removal potential, with median annual atmospheric flow rates of 30 GtCO2, 0.06 GtCH4, 0.007 GtNOx, and 0.0001 GtPM2.5 to their total surface area. Cities and HVAC systems have flow rates large enough to potentially remove more than 1 GtCO2/y (1 GtCO2e/y for CH4, 20-year GWP), if laboratory-scale removal efficiencies are achieved under current atmospheric concentrations. HVAC filters have the potential to achieve costs as low as $600 per tCO2 removed ($2000 per tCO2e) if CO2-sorption (CH4-catalyst) technologies are incorporated into their surfaces and maintained through replacement, compared with $3000 per tCO2 ($10,000 per tCO2e) for cities, using literature material and application costs. These estimates exclude regeneration energy, associated electricity use, and downstream processing. These findings suggest that integrating surface-based pollutant removal technologies into infrastructure could support climate mitigation, although further work is needed to assess feasibility, deployment, and cost in application.
| Item Type: | Article |
|---|---|
| Additional Information: | We acknowledge the Grantham Foundation for supporting this research. |
| Uncontrolled Keywords: | Pollutant removal, cities, HVAC systems, transport, sorption, catalysis, filtration |
| Subjects: | G Geography. Anthropology. Recreation > GE Environmental Sciences Q Science > Q Science (General) Q Science > QA Mathematics > QA75 Electronic computers. Computer science |
| Faculty / School / Research Centre / Research Group: | Faculty of Engineering & Science Faculty of Engineering & Science > School of Computing & Mathematical Sciences (CMS) |
| Last Modified: | 12 Aug 2026 11:04 |
| URI: | https://gala.gre.ac.uk/id/eprint/54019 |
Actions (login required)
![]() |
View Item |
Downloads
Downloads per month over past year
Tools
Tools