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Nanomagnetic route to bias-magnet-free, on-chip Faraday rotators

机译:通往无偏磁片上法拉第转子的纳米磁路

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摘要

The miniaturization of Faraday rotator elements is of interest in optical telecommunications for the production of small isolator components. Here we discuss the fabrication of bias-magnet-free-waveguide Faraday rotators for ultrasmall planar device applications. Photonic-crystal structures on magnetic films can yield a significant enhancement in magneto-optic rotation efficiency and an overall reduction in device dimensions. By introducing single-domain magnetic nanoparticles as defects in the photonic bandgap, we show that one can maintain a high degree of coercivity in the Faraday rotator, thus obviating the need for external magnets. We present a theoretical discussion of the formation of single-domain particles in magnetic garnet films, their reversal field characteristics, and the waveguide properties and magneto-optic response of photonic crystals with single-domain defects. (C) 2005 Optical Society of America
机译:法拉第旋转器元件的小型化在光通信中用于生产小的隔离器组件中是令人关注的。在这里,我们讨论了用于超小型平面设备应用的无偏磁波导法拉第转子的制造。磁性膜上的光子晶体结构可以显着提高磁光旋转效率,并总体上减小器件尺寸。通过引入单畴磁性纳米粒子作为光子带隙中的缺陷,我们表明人们可以在法拉第旋转器中保持高矫顽力,从而消除了对外部磁体的需求。我们对磁性石榴石薄膜中单畴粒子的形成,其反转场特性以及具有单畴缺陷的光子晶体的波导特性和磁光响应进行理论讨论。 (C)2005年美国眼镜学会

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