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Compact optical one-way waveguide isolators for photonic-band-gap microchips

机译:光子带隙微芯片的紧凑型光学单向波导隔离器

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In two-dimensional (2D) photonic crystals (PC's), we demonstrate compact optical waveguide isolators in which light can propagate only one way. Waveguides are composed of magneto-optical materials with magnetic domain walls. Magneto-optical effects and magnetic domain walls break time-reversal and space-inversion symmetries, respectively, leading to nonreciprocal waveguides with different group velocities for forward and backward propagating light of a given frequency. When backward light has a zero group velocity, only forward light can be transmitted while backward light stops. Slow leakage of backward light (when the group velocity is not precisely zero) is eliminated by introducing absorption loss in nonreciprocal PC waveguides. Then, absorption of forward light is less than that of backward light. Introducing gain material and signal amplification by current injection, forward light can propagate with no net loss and only backward light is attenuated. We demonstrate that backward light, with nearly zero group velocity, can be eliminated because of absorption over a long effective optical path length. This enables compact on-chip photonic band-gap isolators. The waveguide. isolator is assumed to be. composed of europium oxide with the Faraday rotation angle of theta(F)=3.49X10(3) rad/cm at wavelength lambda=1.5 mu m under a magnetic field 0.9 Tesla. In a waveguide isolator with the length of 8.5 mu m, transmittance of backward light is mostly zero at a specific frequency. when transmittance of forward light is amplified to I by current injection. The usable bandwidth is up to 12 nm centered at 1.5 micron wavelength as the device length is increased (L=42.6 mu m). We demonstrate similar results for an asymmetric: nonreciprocal waveguide without a magnetic domain wall. The possibility of compact on-chip photonic band-gap isolators is demonstrated for 2D membrane photonic crystals with finite thickness in the third dimension. Computations are performed using plane
机译:在二维(2D)光子晶体(PC的)中,我们展示了紧凑的光波导隔离器,其中光可以仅以一种方式传播。波导由磁光材料与磁畴壁组成。磁光效应和磁畴壁分别断开时间反转和空间反转对称,导致非探测波导,其具有不同的群速度,用于给定频率的前向和向后传播光。当后光具有零组速度时,只能在向后灯停止时传输前向光。通过引入非传导PC波导中的吸收损失,消除了后向光的慢速泄漏(当群速度不准确)消除。然后,向前光的吸收小于向后光的光。通过电流注入引入增益材料和信号放大,正向光可以不具有净损耗,并且只有向后灯衰减。我们证明,由于在长效有效光路长度上吸收,可以消除具有近零群速度的后光。这使得可以紧凑的片上光子带间隙隔离器。波导。假设隔离器是。由磁场下的波长λ= 3.49x10(3)rad / cm的法拉第旋转角度组成,在磁场0.9特斯拉下,在波长λ=1.5μm。在具有8.5μm的波导隔离器中,向后灯的透射率在特定频率下大多为零。当通过电流注射放大向前光的透射率被放大。当器件长度增加(L =42.6μm)时,可用带宽高达12nm,为1.5微米波长。我们展示了非对称的类似结果:没有磁畴壁的非抗剖波导。 Compact芯片上电动带间隙隔离器的可能性用于2D膜光子晶体,在第三尺寸中具有有限厚度。使用平面执行计算

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