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Jakub Herman

Publications and source records attributed to Jakub Herman.

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New self-organized benzo[b]thiophene-based materials for GHz applications

This research delves into the synthesis and characterization of novel liquid crystal compounds derived from benzo[b]Ithiophene cores, focusing on their potential applications in microwave technology. Two synthetic strategies were developed to construct rigid cores, resulting in the successful synthesis of ten compounds with varied terminal groups and lateral substituents. Correlations between molecular structure and mesomorphic properties were elucidated through extensive comparative analysis. Birefringence measurements and quantum chemical calculations further provided insights into the optical properties and polarizability anisotropy of the synthesized compounds. The results highlight the influence of structural diversity on the compounds' suitability for microwave applications. Specifically, compounds featuring carbon-carbon triple bonds and polar terminal groups demonstrated enhanced birefringence and polarizability values, indicating their potential in microwave device fabrication. This study underscores the importance of molecular design in optimizing liquid crystal materials for advanced technological applications.

cond-mat.soft

Spontaneous polar and chiral symmetry breaking in ordered fluids -- heliconical ferroelectric nematic phases

It is known that the chiral interaction described by Dzyaloshinskii-Moriya (DMI) term lead to the plethora of topological structures of magnetic spins, such as helical or skyrmion phases. Here we present the that analogues electrical DMI can lead to similar structural complexity of electric dipoles in soft matter. We report on a new polar liquid phase in which achiral molecules spontaneously form a heliconical structure. The helical pitch is comparable to the wavelength of visible light and unwinds critically at the transition to a uniformly polar, ferroelectric nematic phase. Although this new liquid crystalline phase resembles the twist-bend nematic phase, the mechanism of its formation is different and is attributed to electrical interactions that cause non-collinear arrangement of electric dipoles, similarly as observed for spins in magnetic systems.

cond-mat.soft