LYOPOMS · Lyotropic liquid crystal properties of Polycatenar Mesogens
FP6 — Marie Curie Actions (Human Resources and Mobility)
- Duration
- 2005-09-01 → 2007-08-31
- EU contribution
- €228,193
- Participants
- 1
- Scheme
- IIF
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Results in brief
Final Activity Report Summary - LYOPOMS (Lyotropic Liquid Crystal Properties of Polycatenar Mesogens)
The project addressed fundamental issues about how solvents affected the way in which liquid crystals might organise. In general terms, two main classes of liquid crystal are known, namely thermotropic, where the order of the solid state was destroyed by the action of temperature, and lyotropic, where it was destroyed primarily by solvent. This project sought to investigate the lyotropic properties of a certain class of thermotropic system, i.e. polycatenar liquid crystals. Initial work by us, elaborated during the previous visit of Dr Smirnova, had shown that added polar solvents tended to associate with polar parts of the molecules studied, while non-polar solvents associated with non-polar parts. There was a sense in which this might appear unsurprising, but it did mean that we could emphasise the contribution to the liquid crystal properties of either the polar or non-polar part of the molecule. Nevertheless, more detailed examination showed that the precise nature of the solvent had a much more profound effect so that particular behaviour could be induced using small, highly polar solvents, in which chromonic behaviour was found. These first systems were distinct as they contained a metal atom at the centre, which formally carried a charge, making the different parts of the molecule (polar and non-polar) quite distinct. The major part of the current project then concentrated on metal-free systems where the difference in polarity between the core of the molecule and its periphery was not so great. What we expected to find was behaviour similar to that in the metal-based systems, yet what we discovered was quite different. Surprisingly, for the majority of the studies liquid crystals non-polar solvents were unselective in the part of the molecule with which they associated and therefore acted to dissolve them. Thus, it was only when the core of the molecules was made polar using either fluorine atoms or cyano groups, or when the system was electronically conjugated, that any effect of solvent was seen. This finding was very important. It was often said that organisation in liquid crystal phases was driven by a local-scale microsegregation between the polarisable, aromatic parts of the molecule and the non-polar chains. This microsegration as a driving force for formation of layered phases was not entirely consistent with what we observed.
Data: CORDIS, © European Union
Project objective
The proposal will bring to the EU a most talented Russian researcher with a unique training in the solvent-induced (lyotropic) properties of liquid crystals. The proposed study has its origins in an initial visit made by the applicant to the Exeter group w here she established, for the first time, lyotropic liquid crystal properties of polycatenar materials in non-aqueous solvents. The programme will address a detailed understanding of the factors that control and influence this behavior, initially using a series of polycatenar silver complexes whose thermotropic properties are well documented. The aim is to control the phase behaviour predictively. It is then proposed to study representative examples of other polycatenar liquid crystals and to apply the kno wledge gained in the first part of the proposal to the control of their lyotropic organisation. It is planned that the work carried out under this programme will form the basis for an ongoing collaboration between applicant and host once the fellowship is ended as the expertise of the two partners is highly complementary. The research area is highly topical as liquid crystals represent an area of real strength within the EU, and the relationship that liquid crystal systems can play in the realization of the rge supra-molecular structures which may mimic biological constructs or may have applications in areas such as photonics, is emerging from EU-led science.
Original text from CORDIS.
Participants
- UNIVERSITY OF EXETER · EXETERCoordinatorUnited Kingdom
Links
Data: CORDIS, © European Union
