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Optoelectronic application of graphene nanoribbon for mid-infrared bandpass filtering

机译:石墨烯纳米对中红外带通滤波的光电应用

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摘要

In this study, an ultra-compact optoelectronic bandpass filter is proposed. A single piece of graphene nanoribbon (GNR) is placed between two input-output GNRs to form a Fabry-Perot-like cavity. The GNR, as a mid-infrared surface waveguide, enhances the compatibility with complementary metal oxide-semiconductor processing technologies. The transmission characteristics of the bandpass filter are tuned by the modulation of surface charge carrier density simply through changing the bias voltage applied on the GNR cavity, and thus a tunable filter at room temperature is achieved. It is found that increasing the gate voltage and the silica substrate thickness or middle GNR width alters the max peak of transmission spectra of the filter toward smaller wavelengths. In contrast, increasing the middle GNR length redshifts max peak of the filter toward longer wavelengths. The finite different time domain (FDTD) inhouse code has been employed to verify the designs. (C) 2018 Optical Society of America
机译:在该研究中,提出了一种超紧凑的光电带通滤波器。将一块石墨烯纳米卷(GNR)置于两个输入输出GNR之间,以形成法布里 - 珀氏腔。作为中红外表面波导的GNR增强了与互补金属氧化物半导体加工技术的相容性。通过改变施加在GNR腔上的偏置电压,通过改变施加在GNR腔上的偏置电压,通过改变施加在GNR腔上的偏置电压来调谐带通滤波器的传输特性,因此实现了室温下的可调滤波器。发现栅极电压和二氧化硅衬底厚度或中间GNR宽度的增加改变了滤波器的透射光谱的最大峰值朝向较小的波长。相比之下,增加中间GNR长度红移滤波器的最大峰值朝向更长的波长。已采用有限的不同时域(FDTD)Inhouse代码来验证设计。 (c)2018年光学学会

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