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Plasmonic phase modulator based on novel loss-overcompensated coupling between nanoresonator and waveguide

机译:基于新型谐振器与波导之间损耗补偿的耦合的等离子相位调制器

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摘要

We present that surface plasmon polariton, side-coupled to a gain-assisted nanoresonator where the absorption is overcompensated, exhibits a prominent phase shift up to π maintaining the flat unity transmission across the whole broad spectra. Bandwidth of this plasmonic phase shift can be controlled by adjusting the distance between the plasmonic waveguide and the nanoresonator. For a moderate distance, within bandwidth of 100 GHz, the phase shift and transmission are constantly maintained. The plasmonic phase can be shift-keying-modulated by a pumping signal in the gain-assisted nanoresonator. A needed length in our approach is of nanoscale while already suggested types of plasmonic phase modulator are of micrometer scale in length. The energy consumption per bit, which benefits from the nano size of this device, is ideally low on the order of 10 fJ/bit. The controllable plasmonic phase shift can find applications in nanoscale Mach–Zehnder interferometers and other phase-sensitive devices as well as directly in plasmonic phase shift keying modulators.
机译:我们提出,表面等离子体激元极化,侧耦合到增益辅助的纳米谐振器,其中吸收被过度补偿,表现出高达π的显着相移,在整个宽光谱范围内保持平坦的统一透射。可以通过调节等离子体波导与纳米谐振器之间的距离来控制该等离子体相移的带宽。在100 GHz带宽内的适当距离内,相移和传输一直保持不变。等离子体相可以通过增益辅助纳米谐振器中的泵浦信号进行移位键控调制。在我们的方法中,所需的长度是纳米级的,而已经提出的等离激元相位调制器的类型的长度是微米级的。得益于此器件的纳米尺寸,每位的能量消耗理想地低至10µfJ /位。可控的等离子相移可以在纳米级Mach-Zehnder干涉仪和其他相敏设备中找到应用,也可以直接用于等离子相移键控调制器中。

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