227024-10-4Relevant academic research and scientific papers
Intermolecular organisation of triphenylene-based discotic mesogens by interdigitation of alkyl chains
Allen,Diele,Harris,Hegmann,Kariuki,Lose,Preece,Tschierske
, p. 302 - 311 (2001)
Two series of hexakis(alkyloxy)triphenylenes have been synthesised and characterised. All materials contain two different lengths of n-alkyloxy chains. Series I (CmCn) materials contain three -OC5H11 chains and three -OCnH2n+1 chains. Series II (CmCn) materials contain three -OCmH2m+1 chains and three -OCnH2n+1 chains, such that m+n = 10. Hexagonal columnar mesophases are observed in Series I for n≥3 and, in Series II, for C5C5 and C6C4. Investigation by XRD shows that, within Series I, increasing the Cn chain length increases the intercolumnar spacing. Furthermore, the intercolumnar spacings for constitutional isomers are identical. The difference in the lengths of the two types of alkyl chain at the periphery of the molecules is defined as the Interdigitation Length (IL) and is a measure of the maximum extent of interdigitation that is possible between neighbouring molecules. Series I and II materials have been studied to probe the effect of IL on the change in enthalpy (ΔHCol-1) and entropy (ΔSCol-1) for the mesophase to isotropic liquid phase transition. In contrast to CxCx materials, which show a decrease in ΔHCol-1 and ΔSCol-1 with increasing chain length, Series I and II mesogens all exhibit ΔHCol-1 and ΔSCol-1 values similar to those of long chain CxCx materials, irrespective of chain length.
Triphenylene derivative and use thereof
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Page/Page column 15; 16, (2016/05/19)
A triphenylene derivative of general formula (I) or general formula (II) which can be used as a component of liquid crystal medium and the use thereof are provided in the present invention. This compound can be used to form a negative discotic liquid crystal composition having a suitable temperature range of liquid crystal phase and a lower clearing point, which can be used in TFT liquid crystal display as an optical compensation film (cell) material.
