FP7Individual fellowship2014–2017

DYNASLIPS · Dynamic Flow Control and Self-Assembly on Bioinspired Slippery Surfaces

FP7 — People (Marie Curie Actions)

Duration
2014-09-01 → 2017-08-31
EU contribution
€270,814
Participants
1
Scheme
MC-IOF

Lines connect the coordinator with its partners.

Results in brief

Dynamic Flow Control and Self-Assembly on Bioinspired Slippery Surfaces

Slippery Liquid-Infused Porous Surfaces (SLIPS) are surfaces with exceptional liquid-repellent, anti-icing and antibiofouling properties. Inspired by pitcher plants (Nepenthes), they are based on micro/nanoporous and/or texturized solids that are infused with lubricating liquids (Nature 477, 443-447, 2011). They are solid-liquid hybrid surfaces, wherein the porous solid withholds the lubricating liquid by means of physical and chemical forces. In this Marie Curie project, we investigate different dynamic processes on SLIPS (hence the acronym “DynaSLIPS”). The objectives include realization of flow control of droplets, understanding of dissipative processes on moving droplets, and self-assembly of droplets and colloidal objects on SLIPS. We have developed new research equipment that allow us to simultaneously probe friction (with a cantilever sensor) and stability of the lubricant layer (with optical imaging and interference effect) on SLIPS. We have applied these tools to a wide range of SLIPS types where we have systematically altered the type of the nano/microstructure (e.g. size, shape, spacing of the nano/microscopic features), lubricant chemistry, and composition of the sliding droplets. As a main result, we have revealed how the lubricant layer stability affects dissipation on SLIPS (Nature Physics 13, 1020-1025, 2017). We have also investigated self-assembly of both microscopic and macroscopic objects on SLIPS. Results show that self-assembly of both colloidal matter and droplets on SLIPS can be controlled with physical forces. As a result from this project, we have a good understanding of friction and dissipation mechanisms on SLIPS and how those can be minimized, with potential socio-economic impact. The new insights to dissipation will enable rational design of SLIPS for real-world applications related to preventing wetting and contamination of surfaces. We have also developed better tools for controlling droplet flow on SLIPS with magnetic fields. These tools may find use in modern digital microfluidics and droplet-based analysis techniques. We also have improved understanding of behavior of colloidal matter and living micro-organisms on SLIPS. These results will have direct implications on utilization of SLIPS as slippery and antibiofouling coatings that are crucially needed in many fields of engineering ranging from biomedical devices to transport industries.

Data: CORDIS, © European Union

Project objective

Biomimetics and bioinspiration have been proven to be fruitful approaches to designing novel liquid and dirt repellent coatings. For example, lotus-mimetic superhydrophobic surfaces have gained enormous amounts of interest during the past 10-20 years. Today, superhydrophobic coatings are making their commercial breakthrough and can be bought from hardware stores and sprayed on practically any surface. However, another class of bioinspired repellent surfaces is emerging at the moment. This new type of coating has the potential to overcome many of the problems associated with lotus-mimetic superhydrophobic surfaces, such as the poor durability and lack of omniphobicity.Whereas the lotus-mimetic superhydrophobic surfaces are based on rough low-energy coatings, the new type of coating mimics the liquid-infused porous surface of pitcher plants. These new Slippery Liquid-Infused Porous Surfaces (SLIPS) repel almost any liquids and solids, including films of living matter. The goal of this Marie Curie project is to explore dynamics of liquid droplets on these novel surfaces introduced two years ago in 2011. Specifically, the project aims at forming a set of methods for controlling the flow of liquid droplets and understanding how the solid-liquid hybrid surface interacts with moving droplets, leading to energy dissipation. In addition, the Marie Curie project explores also how SLIPS can be used for advanced self-assembly of both macroscopic liquid droplets and nano/microscopic particles. Together the results from these research objectives will significantly improve our understanding of the dynamical aspects of SLIPS. In addition, the knowledge transfer from the world-leading biomimetic laboratory in Harvard will be beneficial for the biomimetics research in ERA.

Original text from CORDIS.

Participants

  • AALTO KORKEAKOULUSAATIO SR · EspooCoordinatorFinland

Links

Data: CORDIS, © European Union