Projekteja vuodessa
Abstrakti
The propagation of interfacial waves in free and constrained conditions, such as deep and shallow water, has been broadly studied over centuries. It is a common event that anyone can witness, while contemplating the ocean waves washing ashore. As a complementary configuration, this work introduces waves propagating on an interface restricted by its pinning to the solid microstructures of an underwater superhydrophobic surface. The latter has the ability to stabilize a well-defined microscale gas layer, called a plastron, trapped between the water and the solid phase. The acoustic radiation force produced with focused MHz ultrasound successfully triggers kHz “plastronic waves”, i.e., capillary waves travelling on a plastron’s gas-water interface. The exposed waves possess interesting features, i.e., (i) a high propagation speed up to 45 times faster than conventional deep water capillary waves of comparable wavelength and (ii) a relation of the propagation speed with the geometry of the microstructures. Based on this and on the observed variation of wave speed over time in conditions of gas-undersaturated or -supersaturated water, the usefulness of the plastronic waves for the non-destructive monitoring of the plastron’s stability and the spontaneous air diffusion is eventually demonstrated.
Alkuperäiskieli | Englanti |
---|---|
Artikkeli | 1568 |
Sivut | 1-8 |
Sivumäärä | 8 |
Julkaisu | Nature Communications |
Vuosikerta | 16 |
Numero | 1 |
DOI - pysyväislinkit | |
Tila | Julkaistu - jouluk. 2025 |
OKM-julkaisutyyppi | A1 Alkuperäisartikkeli tieteellisessä aikakauslehdessä |
Sormenjälki
Sukella tutkimusaiheisiin 'Fast capillary waves on an underwater superhydrophobic surface'. Ne muodostavat yhdessä ainutlaatuisen sormenjäljen.-
Wong William: Enhanced Electrocatalysis via the Plastron Effect
Wong, W. (Vastuullinen tutkija)
01/09/2022 → 31/08/2025
Projekti: RCF Postdoctoral Researcher
-
SuperElectro: Super(de)wettability-enhanced Electrocatalysis
Wong, W. (Vastuullinen tutkija)
01/05/2022 → 31/10/2025
Projekti: EU Horizon Europe MC
-
PULSUR: Pulsating Surfaces
Ras, R. (Vastuullinen tutkija)
01/09/2021 → 31/08/2025
Projekti: RCF Academy Project