LIMO · Light Driven Stomatocyte Nanomotors
Horizon 2020 — Marie Skłodowska-Curie Actions
- Duration
- 2018-06-01 → 2020-05-31
- EU contribution
- €165,599
- Participants
- 1
- Scheme
- MSCA-IF-EF-ST
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Results in brief
Light Driven Stomatocyte Nanomotors
The discovery of first centimeter-sized chemical motors has brought great interest in the field of catalytic micro/nanomotors fabrication. Nanomotors are mostly produced via top-down approaches, are micron sized and contain hard metal surfaces, which are not suitable for biomedical applications and soft robotics. Also, the bottleneck for such nanomotors is use of toxic fuels which are both not biocompatible and quest to gain control over the directional movement and speed of the nanomotors, hence, limiting its biomedical applications. To overcome aforementioned problems, their is a need to fabricate nanomotors that can use light as an energy source for driving nano-assemblies and to gain control over attributes like direction and speed that has not been explored before. Three main scientific objectives were proposed in the grant, the work carried out towards the achievement is listed below: • Objective 1: Synthesis and assembly of stomatocytes using PEG-b-PS block copolymers functionalised with azocompounds. • Objective 2: Fabricate thylakoid loaded nanomotor and compare its movement with azocompounds functionalised nanomotor. • Objective 3: Combining azocompounds functionalised and thylakoid loaded stomatocytes into one system to use both UV and Visible light source. During the fellowship objective 1 and 2 were met without any deviations, but due to stability issues objective 3 was not met and hence a new WP was designed and the objectives of those were met. In brief, for all the objectives polymers were synthesized and used as such to fabricate stomatocytes structures. In case of objective 1, the azobenzene molecules were grafted onto pre-formed stomatocytes with functional handles and tested for its motility in presence of UV-Vis light source and studied for its phototactic behaviour. For objective 2, the TNP were encapsulated into the stomach of stomatocytes during their shape transformation from polymersomes into stomatocytes and visible light was used to study the motion behaviour under different light intensities. In terms of the new objective 3, CaCO3 nanoparticles were grown in-situ by adding Na2CO3 to the pre-formed CaCl2 loaded stomatocytes and tested for its ability to power motion in presence of acidic pH, together with studying its pH tactic behaviour. I envision, the as fabricated nanomotors to be optimised for biomedical applications like cargo delivery and tumor sensing with improved control on attributes like speed and directionality. They could also be advantageous in the field of soft robotics and sensing “hormone disruptors” that is toxic to human health. They can also play crucial role in formulation of self-healing materials.
Data: CORDIS, © European Union
Project objective
The discovery of first centimeter-sized chemical motors has brought great interest in the field of catalytic micro/nanomotors fabrication. Nanomotors are mostly produced via top-down approaches, are micron sized and contain hard metal surfaces, which are not suitable for biomedical applications and soft robotics. Also, the bottleneck for such nanomotors is use of toxic fuels which are both not biocompatible and quest to gain control over the directional movement and speed of the nanomotors, hence, limiting its biomedical applications. To overcome aforementioned problems, there is a need to explore alternative energy sources like magnetic, electrical, ultrasound or light to drive the nanomotors. The goal of this proposal is to harness light energy for driving nano-assemblies and to gain control over attributes like direction and speed that has not been explored before. The highlight of the proposal is the use of a unique and well-known plant compartments, thylakoids, that takes part in the complicated photosynthesis process of plant leafs. The photosystem II present in them is known to carry out water splitting reaction, thus, producing oxygen in presence of visible light. This has not been exploited before for bubble propulsion of nanomotors. Furthermore, the azobeneze moieties will aid in photomechanical movement due to cis-trans isomerization under UV light. Hence, the nanomotors will be capable of harnessing dual-light (UV and visible light) source for propulsion. This would give control over directionality and speed of the nanomotors. This design will be a paradigm shift for future nanomotor development with controlled attributes required for use in biomedical applications. The project clearly links to the Marie Skłodowska-Curie Individual Fellowships work programme as the proposed project will diversify my individual competence in terms of skill acquisition through advanced training and international mobility together with strong two way transfer of knowledge.
Original text from CORDIS.
Participants
- STICHTING RADBOUD UNIVERSITEIT · NijmegenCoordinatorNetherlands
Links
Data: CORDIS, © European Union
