IMAGINE_LC · Investigating the Manipulation of Alignment/Activity via Geometrical INteraction Effects in Liquid Crystals
Horizon Europe — Marie Skłodowska-Curie Actions
- Duration
- 2023-01-01 → 2024-12-31
- EU contribution
- €187,624
- Participants
- 1
- Scheme
- HORIZON-TMA-MSCA-PF-EF
Lines connect the coordinator with its partners.
Results in brief
Investigating the Manipulation of Alignment/Activity via Geometrical INteraction Effects in Liquid Crystals
Over the last half-century liquid crystals have become a ubiquitous part of daily life due to how they revolutionized the modern display industry. Most common liquid crystals are made of rod-like components (mesogens) that self-assemble, with the simplest liquid crystal phase, nematic, assembling its rod components to generate long-range orientational order. This in turn gives rise to anisotropic properties. For instance, their dielectric and optical anisotropy facilitates their reorientation with applied electric fields and subsequent alteration of light intensity – essential for making a pixel, amongst other liquid crystal technologies. Nematic ordering can occur across length scales from nanometric, molecular systems to centimeter-scale, rod-shaped wires. Indeed, although most people associate liquid crystals with displays, they are also pervasive in larger scaled, living systems. Liquid crystals can even be found within our bodies, such as in the organization of proteins and cells. Recent research aims to apply liquid crystal physics to active, biological systems, to better understand how anisotropy influences function. Yet, the tools developed for the display industry to structure liquid crystals remain to be leveraged for active liquid crystal systems. To advance our understanding of active liquid crystals, essential for elucidating biological processes, I will carry out this fellowship to develop a model liquid crystal system that can be structured through confinement, using techniques inspired by display technologies. My experimental system will probe the impact of geometry on liquid crystal alignment and dynamics. This project will be performed at Utrecht University (UU) under the supervision of Dr. Lisa Tran. The Tran group expertise includes control of molecular liquid crystals under varying geometrical confinement. The Tran group is embedded in the Soft Condensed Matter and Biophysics (SCMB) group and the Debye Institute for Nanomaterials Science, with expertise in nano/micro particle synthesis and high-resolution imaging techniques. Combined with my multi-disciplinary background in liquid crystal physics, chemistry, and engineering, I will innovate the geometrical alignment of passive and active liquid crystals beyond current state of the art.
Data: CORDIS, © European Union
Project objective
Controlling the orientation of rod-like objects is crucial for liquid crystal technologies and the natural world. For biological systems, recent studies have shown that living materials form liquid crystalline structures that dictate biological function. These systems are out-of-equilibrium, converting energy into motion, and are modelled as active liquid crystals. However, alignment techniques commonly used in liquid crystal technologies are yet to be leveraged for active counterparts. The prevailing chemical alignment methods do not scale to these larger system sizes. Geometrical orientation of rods, however, applies across length scales. Though the influence of geometrical features on alignment is not well understood, even for passive systems. IMAGINE_LC will Investigate the Manipulation of Anchoring and Activity via Geometrical Interaction Effects on an experimental, colloidal, liquid crystal system. The colloidal scale minimizes chemical interactions and enhances geometrical effects. I will develop a passive and active model system that is confined by walls with diverse topographical features. The project will be conducted at Utrecht University, where the host has expertise in confined liquid crystals and colloidal synthesis.The host and I will have a two-way transfer of knowledge by employing host expertise in liquid crystal analysis, colloidal synthesis, and high-resolution imaging for this project. These tools are essential for developing a colloidal liquid crystal. My knowledge of molecular liquid crystals is complimentary to the host group’s research focus on liquid crystal assembly. My experience with complex liquid crystal device fabrication will complement the host’s body of knowledge. By combining our expertise, IMAGINE_LC will advance the fundamental understanding of geometry on liquid crystal alignment and dynamics, establishing principles that are generalizable to synthetic and biological systems, ranging from nanometric to millimetric sizes.
Original text from CORDIS.
Participants
- UNIVERSITEIT UTRECHT · UtrechtCoordinatorNetherlands
Links
- View on CORDIS
- DOI: 10.3030/101065631
- https://ec.europa.eu/research/participants/documents/downloadPublic?documentIds=080166e5fdd05199&appId=PPGMS
Data: CORDIS, © European Union
