H2020Individual fellowship2016–2018

SPicEs · Smart Pickering Emulsions

Horizon 2020 — Marie Skłodowska-Curie Actions

Duration
2016-06-01 → 2018-05-31
EU contribution
€185,076
Participants
1
Scheme
MSCA-IF-EF-ST

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Results in brief

Smart Pickering Emulsions

This action focused on the preparation and characterization of Pickering-type emulsions (PEs) using functionalized micro- and nano-particles, along with their use as confined spaces that can be programmed to perform an action. PEs are emulsions stabilized by solid particles (powders) rather than traditional molecular surfactant and we postulated that using particles with specific properties could impart such properties to the emulsion itself, leading to technological applications. To this end, we first developed a protocol based on the so-called Stöber method for the production of silicon dioxide particles, to precisely control the size of the particles, load them with fluorescent dyes allowing for their visualization and modify their surfaces with functional moieties such as fullerenes and short nucleic acid sequences. Next, we compared discontinuous and continuous-flow approaches to the preparation of the emulsions. Comparison of these different approaches, leading to emulsions with different properties, is interesting beyond the scope of this project and could in principle be applied in different fields such as cosmetics and food, where emulsions are obiquitous. It should be mentioned that, while the use of flow-focusing microfluidic devices operated in a continuous fashion allowed to produce highly monodispersed droplets, the use of solid particles as emulsifiers put the devices under intense stress and often caused their failure on the long run. Characterization protocols for our emulsions needed to be developed, since emulsified systems are tipically observed as a whole, but we were more interested in the behaviour of the single droplets and the fate of the emulsification agent. For example we can easily describe the physico-chemical properties of creams or foams, but the observation of the single droplets/bubbles in an emulsified system is tricky. Moreover, in this action we delved deeper into the problem, by trying to observe directly the emulsifier – micro and nanoparticles – on the surface of the droplets. Finally, we tested one of the emulsions we developed, consisting of silicon dioxide particles decorated with [60]fullerene moieties, as a chemical reactor for the light-induced generation of singlet oxygen (a powerful, eco-friendly oxidant) and the oxidation of a model substrate. In this context, each droplet in the emulsion acts as a stand-alone chemical reactor, meaning that the oxidation can be easily scaled by de facto numbering up of the reaction vessels. This, in turn, does not change the geometry of the single reaction units – a welcome feat in a chemical process such as the one considered.

Data: CORDIS, © European Union

Project objective

The main objective of SPicEs is to prepare the ER for an independent career in the research sector, by training him within the framework of a high-quality research project at the interface between the science and engineering of materials, chemistry and physics. The scientific objective of SPicEs is the development of a general approach to organize nano-structured materials on the interfaces of liquids, as in Pickering Emulsions, to yield stimuli-responsive devices. The assembly of nanomaterials into components and devices is a requisite to develop marketable applications. Pickering emulsions are an emerging technology with great potential in this field, however many aspects of interest remain to be studied, such as the combination of different materials in a single supracolloidal structure. Within SPicEs, microfluidic methods will be used to generate droplets with a high degree of control, covering them with functional nanoparticles capable of imparting each droplet with useful properties such as the ability to respond to external stimuli (light, heat, pH changes). The emulsions prepared in this way will be used in proof-of-principle applications, as random lasing matrixes and carriers for the controlled delivery of chemical payloads.The project will provide the ER a possibility to train and put his abilities to test on an international level. For him, it will represent a strong starting point for an independent career in research. His training will encompass fundamental and applied science, as well as manuscript preparation, IPR issues, networking and soft skills such as leadership, communication and teamwork in a multi-ethnical, highly multidisciplinary group. For the host institution this project will represent a possibility to broaden the horizon of one of its most distinctive fields of research, that of self-assembly, and strengthen its link with the material science community, by developing fundamental science with a strong potential for practical application

Original text from CORDIS.

Participants

  • UNIVERSITE DE STRASBOURG · StrasbourgCoordinatorFrance

Links

Data: CORDIS, © European Union