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On the lifetime of a coffee drop
Paul Bienvenu1, Haruka Hitomi1, David Quéré1
1Physique et Mécanique des Milieux Hétérogènes, UMR 7636 du CNRS, PSL Research University, ESPCI-Paris, France.
Soft Matter
|January 16, 2026
Summary
Coffee stains form larger than expected due to amplified contact angle hysteresis, pinning the liquid. This pinning accelerates evaporation by 30% compared to water, as flatter drops dry faster.
Area of Science:
- Physics
- Fluid Dynamics
- Materials Science
Background:
- Coffee drops form circular stains after evaporation, a phenomenon studied for decades.
- The role of contact angle hysteresis in pinning the liquid during evaporation has been underestimated.
- This pinning effect explains the large stain size observed after coffee drop evaporation.
Purpose of the Study:
- To investigate the consequence of strong contact line pinning on evaporation kinetics.
- To determine if pinned liquid systems evaporate faster than unpinned systems.
- To explore the generality of this effect in various complex liquids.
Main Methods:
- Studying the evaporation of coffee drops and comparing it to water.
- Analyzing the effect of substrate modification (etching a groove) on evaporation rate.
- Observing the evaporation of diverse complex liquids.
Main Results:
- Contact angle hysteresis is significantly amplified in coffee drop evaporation, leading to liquid pinning.
- The pinning effect accelerates evaporation kinetics by approximately 30% compared to water.
- Etching a groove in the substrate, which blocks the contact line, further accelerates evaporation.
- The phenomenon's generality is explored across different complex liquids.
Conclusions:
- Strong contact line pinning, caused by amplified contact angle hysteresis, accelerates evaporation.
- Systems that impede contact line movement enhance evaporation rates.
- The findings have implications for understanding evaporation dynamics in various complex fluid systems.
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