A droplet hitting a superhydrophobic surface will undergo the Cassie to Wenzel transition when the wetting force exceeds the anti-wetting force. The critical velocity of the droplet’s Cassie to Wenzel state transition can reflect the wettability of the surface. However, the critical velocity research is still at the microscale and has not been extended to the nanoscale mechanism. A cross-scale critical velocity prediction model for superhydrophobic surfaces with symmetric structures is proposed here based on a mechanical equilibrium system. The model’s applicability is verified by experimental data. It demonstrates that the mechanical equilibrium system of droplet impact with capillary pressure and Laplace pressure as anti-wetting forces is...
We perform experiments to characterize the transition from the Cassie-Baxter to the Wenzel state for...
We perform experiments to characterize the transition from the Cassie-Baxter to the Wenzel state for...
In this work, we investigate the dynamic advancing and receding contact angles, and the mechanisms o...
We study the wetting energetics and wetting hysteresis of sessile and impacting water droplets on su...
To understand the conditions and mechanism of droplet wetting transition from Cassie to Wenzel state...
Despite the fact that superhydrophobic surfaces possess useful and unique properties, their practica...
URL to paper listed on conference siteIn this paper, we present static and dynamic wetting interact...
We numerically investigate bouncing and non-bouncing of droplets during isothermal impact on superhy...
Efficient droplet transport is critical in microassays, microfluidic devices, and a range of heat tr...
We perform experiments to characterize the transition from the Cassie-Baxter to the Wenzel state for...
The impact dynamics and spreading behavior of droplets impinging on structured superhydrophobic surf...
Biological and engineering applications of superhydrophobic surfaces are limited by the stability of...
We perform experiments to characterize the transition from the Cassie-Baxter to the Wenzel state for...
We perform experiments to characterize the transition from the Cassie-Baxter to the Wenzel state for...
We perform experiments to characterize the transition from the Cassie-Baxter to the Wenzel state for...
We perform experiments to characterize the transition from the Cassie-Baxter to the Wenzel state for...
We perform experiments to characterize the transition from the Cassie-Baxter to the Wenzel state for...
In this work, we investigate the dynamic advancing and receding contact angles, and the mechanisms o...
We study the wetting energetics and wetting hysteresis of sessile and impacting water droplets on su...
To understand the conditions and mechanism of droplet wetting transition from Cassie to Wenzel state...
Despite the fact that superhydrophobic surfaces possess useful and unique properties, their practica...
URL to paper listed on conference siteIn this paper, we present static and dynamic wetting interact...
We numerically investigate bouncing and non-bouncing of droplets during isothermal impact on superhy...
Efficient droplet transport is critical in microassays, microfluidic devices, and a range of heat tr...
We perform experiments to characterize the transition from the Cassie-Baxter to the Wenzel state for...
The impact dynamics and spreading behavior of droplets impinging on structured superhydrophobic surf...
Biological and engineering applications of superhydrophobic surfaces are limited by the stability of...
We perform experiments to characterize the transition from the Cassie-Baxter to the Wenzel state for...
We perform experiments to characterize the transition from the Cassie-Baxter to the Wenzel state for...
We perform experiments to characterize the transition from the Cassie-Baxter to the Wenzel state for...
We perform experiments to characterize the transition from the Cassie-Baxter to the Wenzel state for...
We perform experiments to characterize the transition from the Cassie-Baxter to the Wenzel state for...
In this work, we investigate the dynamic advancing and receding contact angles, and the mechanisms o...