LACRYMOSA · Designing Multifunctional Self-Limiting Assembled Nanocrystal Superstructures and Monitoring their Self-Assembly at High Spatiotemporal Resolution
Horizon 2020 — Marie Skłodowska-Curie Actions
- Duration
- 2017-10-01 → 2020-10-08
- EU contribution
- €242,930
- Participants
- 2
- Scheme
- MSCA-IF-GF
Lines connect the coordinator with its partners.
Results in brief
Designing Multifunctional Self-Limiting Assembled Nanocrystal Superstructures and Monitoring their Self-Assembly at High Spatiotemporal Resolution
The project LACRYMOSA investigates the self-assembly of colloidal nanocrystals in order to obtain multifunctional assemblies of original geometries in aqueous solution. One of the big challenges in the field of nanomaterial self-assembly is the design of nanostructures of increasing complexity. Among the class of material candidates, colloidal nanocrystals (NCs) are receiving increasing attention because of their potential for many applications ranging from optoelectronics to energy storage and drug delivery. The design of hierarchical assemblies through a self-limited self-assembly, that involves inorganic particles assembling in highly ordered terminal structures, is still challenging but offers many perspectives for templating multifunctional structures of desired shape and size. In this project, the objectives are to design colloidal systems in which chiral micron-sized particles can be chemically synthesized from small nanoparticles by self-assembly. While linear optical properties of similar particles are being a current topic of interest, this project look into the nonlinear optical properties of such particles. Such nonlinear chiroptical colloids could offer perspectives for multimodal two-photon imaging, in situ single-particle motion tracking and target-specific real-time monitoring with efficient background noise suppression.
Data: CORDIS, © European Union
Project objective
This project focuses on the self-limited self-assembly of nanocrystals that involves inorganic particles assembling into highly ordered terminal structures. The design of such structures is still challenging but offers many perspectives for templating assemblies of desired shape and size, and for several applications ranging from optoelectronics to energy storage and biosensing. In this scope, the objectives of the proposal are structured around three main stages: (i) the chemical design of uniformly sized, hybrid magnetic/non-magnetic systems, (ii) the monitoring of the self-assembly reaction in situ using real-time measurement techniques, and (iii) the characterization of the effect of an applied external field on the morphology of the assembled structures. The chemical design methodology of the self-limiting complex particles will be investigated along with Prof. Nicholas Kotov (University of Michigan, USA) during the outgoing phase. X-ray scattering/imaging experiments yielding high spatiotemporal resolution will be performed in large-scale synchrotron facilities in the USA as well as in Europe during the return phase along with Prof. Andrei Petukhov (Utrecht University, Netherlands) with whom the effect of an applied magnetic field will be further studied. A collaboration between the two host institutes in Europe and USA will take place through this fellowship and will involve the competences of the three parties: in chemical engineering of hierarchical assemblies in solution (Prof. Kotov), in X-ray scattering/imaging for studying the self-organization of colloids (Prof. Petukhov) and in data analysis/modeling and X-ray scattering (the fellow Law-Hine). The project should bring new insights into the mechanisms of formation of self-limiting, multifunctional nanoparticles and provide strategies for designing these particles using external control fields.
Original text from CORDIS.
Participants
- UNIVERSITEIT UTRECHT · UtrechtCoordinatorNetherlands
- REGENTS OF THE UNIVERSITY OF MICHIGAN · ANN ARBORUnited States
Links
Data: CORDIS, © European Union
