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   » » Wiki: Flexoelectricity
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Flexoelectricity is a property of a material where there is coupling between electrical polarization and a strain gradient. This phenomenon is closely related to , but while piezoelectricity refers to polarization due to uniform strain, flexoelectricity specifically involves polarization due to strain that varies from point to point in the material. This nonuniform strain breaks , meaning that unlike in piezoelectricity, flexoelectric effects occur in both centrosymmetric and asymmetric crystal structures. This property is not the same as . It plays a critical role in explaining many interesting electromechanical behaviors in hard crystalline materials and core mechanoelectric transduction phenomena in soft biomaterials. Additionally, it is a size-dependent effect that becomes more significant in nanoscale systems, such as crack tips.

In common usage, flexoelectricity is the generation of polarization due to a strain gradient; inverse flexoelectricity is when polarization, often due to an applied electric field, generates a strain gradient. Converse flexoelectricity is where a polarization gradient induces strain in a material.

The electric polarization P_i due to mechanical strain of \epsilon_{ij} in a dielectric is given by:

P_i = e_{ijk}\epsilon_{jk} + \mu_{ijkl}\frac{\partial\epsilon_{jk}}{\partial x_l}

where the first term corresponds to the direct effect and the second term corresponds to the flexoelectric polarization induced by the strain gradient.

Here, the flexoelectric coefficient, \mu_{ijkl}, is a fourth-rank polar tensor and e_{ijk} is the coefficient corresponding to the direct piezoelectric effect.


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