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Arbitrary Power-Conserving Field Transformations With Passive Lossless Omega-Type Bianisotropic Metasurfaces

机译:被动无损欧米茄型各向异性表面的任意守恒场变换

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We present a general theory for designing realistic omega-type bianisotropic metasurfaces (O-BMSs), unlocking their full potential for molding electromagnetic fields. These metasurfaces, characterized by electric surface impedance, magnetic surface admittance, and magnetoelectric coupling coefficient, were previously considered for wavefront manipulation. However, previous reports mainly considered plane-wave excitations, and implementations included cumbersome metallic features. In this paper, we prove that any field transformation that locally conserves real power can be implemented via passive and lossless meta-atoms characterized by closed-form expressions; this allows rigorous incorporation of arbitrary source and scattering configurations. Subsequently, we show that O-BMS meta-atoms can be implemented using an asymmetric stack of three impedance sheets, an appealing structure for printed circuit board fabrication. Our formulation reveals that, as opposed to Huygens' metasurfaces, which exhibit negligible magnetoelectric coupling, O-BMSs are not limited to controlling the phase of transmitted fields, but can rather achieve a high level of control over the amplitude and phase of reflected fields. This is demonstrated by designing O-BMSs for reflectionless wide-angle refraction, independent surface-wave guiding, and a highly directive low-profile antenna, verified with full-wave simulations. This straightforward methodology facilitates the development of O-BMS-based devices for controlling the near and far fields of arbitrary sources in complex scattering configurations.
机译:我们提出了设计现实的欧米伽型各向异性变质表面(O-BMS)的一般理论,从而释放了它们形成电磁场的全部潜力。这些具有电表面阻抗,磁表面导纳和磁电耦合系数特征的超表面以前曾被考虑用于波前操纵。但是,以前的报告主要考虑了平面波激励,其实现包括繁琐的金属特征。在本文中,我们证明了可以通过无源且无损的以封闭形式表达为特征的无形原子来实现任何局部保留有功功率的场变换;这允许严格合并任意源和散射配置。随后,我们展示了可以使用三个阻抗片的不对称堆叠来实现O-BMS形原子,这是用于印刷电路板制造的诱人结构。我们的公式表明,与惠更斯的磁电耦合可以忽略不计的超表面相反,O-BMS不仅限于控制透射场的相位,而且可以实现对反射场的幅度和相位的高度控制。通过设计用于无反射广角折射的O-BMS,独立的表面波导管和高度指向性的低剖面天线(已通过全波仿真验证),可以证明这一点。这种简单的方法便于开发基于O-BMS的设备,用于控制复杂散射配置中任意源的近场和远场。

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