Giant flexoelectricity in bent-core nematic liquid crystal elastomers
John Harden, Martin Chambers, Rafael Verduzco, Paul Luchette, J. T. Gleeson, Samuel Sprunt, Antal Jákli
Abstract
John Harden, Martin Chambers, Rafael Verduzco, Paul Luchette, J. T. Gleeson, Samuel Sprunt, Antal Jákli
Abstract
Recently ferroelectric ceramic and bent-core nematic liquid crystals have demonstrated flexoelectricity (coupling between curvature strains to electric polarization) up to 104 times larger than the previous standards. This may allow for usable electromechanical devices. However, ceramics are too rigid to withstand large bending and bent-core nematic fluids must be physically supported—their technological applicability is still limited. In this paper, we show that novel side-chain bent-core nematic elastomers not only produce giant flexoelectricity but are also robust and flexible enough for microscale parasitic power generation.
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Recently ferroelectric ceramic and bent-core nematic liquid crystals have demonstrated flexoelectricity (coupling between curvature strains to electric polarization) up to 104 times larger than the previous standards. This may allow for usable electromechanical devices. However, ceramics are too rigid to withstand large bending and bent-core nematic fluids must be physically supported—their technological applicability is still limited. In this paper, we show that novel side-chain bent-core nematic elastomers not only produce giant flexoelectricity but are also robust and flexible enough for microscale parasitic power generation.
Key concepts: Flexoelectricity, Liquid crystal, Bent molecular geometry, Materials science, Microscale chemistry, Ferroelectricity, Elastomer, Ceramic