0
Article Tier 2 Detection Methods Environmental Sources Sign in to save

Microplastic and Associated Black Particles From Road‐Tire Wear: Implications for Radiative Effects Across the Cryosphere and in the Atmosphere

Journal of Geophysical Research Atmospheres 2024 13 citations

AI summary Read the abstract

Researchers analyzed atmospherically deposited particles on snow surfaces at high elevations in the Colorado Rocky Mountains and found black substances associated with microplastic fibers originating from tire wear. These particles contain carbon black, a light-absorbing additive, which may accelerate snowmelt by absorbing solar radiation similarly to black carbon soot. The study suggests that airborne tire-wear microplastics could contribute roughly 10% additional radiative forcing in snow-covered regions, with implications for water resources.

Polymers
Study Type Environmental

Abstract The environmental effects of airborne micro‐ and nano‐size plastic particles are poorly understood. Microscopy and chemical analyses of atmospherically deposited particles on snow surfaces at high elevation (2,865–3,690 m) in the Upper Colorado River basin (UCRB; Colorado Rocky Mountains) revealed the presence of black substances intimately associated with microplastic fibers, particles interpreted to have originated as tire matter. Identical and similar particles occur in shredded tires and road‐surface samples. The substance responsible for the black color of all tires is carbon black, a graphitic light‐absorbing tire additive produced by hydrocarbon combustion that homogeneously permeates the mixture of tire polymers and other additives. Such black tire matter may thus exert radiative effects closely similar to those of black carbon. The presence in snow of many organic compound types common to tires, measured by two‐dimensional gas chromatography, suggests that atmospherically deposited black road‐tire‐wear matter is among the light‐absorbing particulates that advance the onset and rate of snow melt in the UCRB. The mass of road‐tire‐wear particles shed from vehicles may be estimated by multiplying measured amounts of eroded tire‐per‐distance traveled by vehicular distances. Under a combination of measurements and assumptions about the amounts and radiative properties of atmospheric tire‐wear particles, the radiative effects of these particles might add about 10%–30% to those effects from black carbon, an estimate ripe for revision. On regional and global scales, the amounts and effects of emitted and deposited tire‐wear matter likely vary by factors of geographic source, transport pathway, and depositional setting.

More Papers Like This

Article Tier 2

Tire Wear Particles Drive Cryosphere Darkening

AI summary Read the abstract

Researchers collected field data examining how tire wear particles deposited on snow and ice surfaces accelerate light absorption and melting, contributing to the darkening and accelerated melt of cryosphere environments.

Article Tier 2

Tire Wear Particles Drive Cryosphere Darkening

AI summary Read the abstract

Researchers collected field data examining how tire wear particles deposited on snow and ice surfaces accelerate light absorption and melting, contributing to the darkening and accelerated melt of cryosphere environments.

Article Tier 2

Optical Properties and Direct Radiative Forcing of Airborne Tire Wear Particles

AI summary Read the abstract

Every time tires roll on the road, they shed tiny plastic particles that float into the air we breathe, and this study found these particles actually absorb sunlight, meaning they may contribute to warming the atmosphere, similar to soot from car exhaust. While this research focused on climate effects rather than direct health impacts, it adds to growing evidence that tire wear particles are a significant, overlooked source of airborne micro- and nanoplastics that we're constantly inhaling. Since these particles are already known to be a health concern, understanding their environmental behavior is an important piece of the bigger picture on plastic pollution's reach.

Article Tier 2

Microplastics’ Hidden Contribution to Snow Melting

AI summary Read the abstract

Microplastic particles present in snow can reduce its reflectivity (albedo) by absorbing sunlight, contributing to faster snow melting and potentially affecting Earth's radiative balance. This subtle effect means microplastic pollution in snow and ice may be compounding the impacts of black carbon on polar and mountain snow melt.

Article Tier 2

Tire-wear particles as potential ice nucleating agents in the atmosphere

AI summary Read the abstract

Researchers systematically investigated the ice-nucleating properties of tire-wear particles -- one of the largest global sources of microplastic pollution at approximately 6 million tons annually -- finding that these airborne particles can act as heterogeneous ice nucleating agents capable of influencing cloud glaciation and atmospheric processes during long-range transport.

Research digests by email

When a large batch of papers lands in the Atlas, we read through it and send a short write-up of what stood out.

Email me about

Share this paper