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首页> 外文期刊>Journal of Modern Optics >Electrically tuned optical reflection band for an artificial helicoidal structure
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Electrically tuned optical reflection band for an artificial helicoidal structure

机译:用于人工螺旋结构的电调用光学反射带

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We analysed the control of optical band gaps for axially propagating electromagnetic waves throughout a nanocomposite structurally chiral medium under the influence of a low-frequency (dc) electric field aligned along the same axis as the periodic structure. This medium is made of metallic nanoballs (silver) randomly dispersed in a structurally chiral material whose dielectric properties can be represented by a resonant effective uniaxial tensor. Structurally chiral material is taken to possess locally a 42m point group symmetry and the Pockels effect is assumed. By establishing the Maxwell equations in a 4 × 4 matrix representation, we have computed the eigenvalues and eigenvectors of the corresponding matrix in the system rotating along with the helical structure as function of the filling factor and the electric field. We found that the band gap properties of the periodic system depend strongly on the applied low-frequency electric field which is able to increase the bandwidths of the two sub-band gaps generated by the presence of the metallic inclusions obtained above a given filling factor. The applied electric field is even able to open the mentioned band gaps when they are initially closed. We note that by increasing the filling factor, also by keeping the inclination angle and the electric field fixed, the bands are opened and closed. Then when changing the angle of inclination and the electric field the bands shift, they break and new sub-band gaps appear.
机译:我们分析了在沿着与周期性的相同轴的低频(DC)电场的影响下,在纳米复合结构的电磁介质下进行轴向传播电磁波的光带间隙的控制。该介质由金属纳米醛(银)制成,随机分散在结构上的手性材料中,其介电性能可以由共振有效的单轴张量表示。在结构上手性上具有局部对称,假设袋效应。通过在4×4矩阵表示中建立麦克斯韦方程,我们已经计算了系统中的相应矩阵的特征值和特征向量以及作为填充因子和电场的功能旋转的螺旋结构。我们发现周期系统的带隙特性在所施加的低频电场上强烈地依赖于所施加的低频电场,这能够增加通过在给定填充因子上方获得的金属夹杂物产生的两个子带间隙的带宽。当最初关闭时,所施加的电场甚至能够打开所提到的带间隙。我们注意到,通过增加填充因子,还通过保持倾斜角和电场固定,频带打开并关闭。然后在改变倾斜角和电场的频带偏移时,出现断裂和新的子带间隙。

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