首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Distinguishing wavelength using two parallelly stacking graphene/thin Si/graphene heterojunctions
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Distinguishing wavelength using two parallelly stacking graphene/thin Si/graphene heterojunctions

机译:使用两个平行堆叠石墨烯/薄Si /石墨烯异质结区分波长

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摘要

In this work, we have developed a wavelength sensor that is capable of distinguishing illumination with wavelengths ranging from ultraviolet (UV) to near infrared (NIR). The as-proposed wavelength sensor is geometrically composed of two parallelly stacking graphene (Gr)/thin Si/Gr heterojunction devices, which are identical in device structures, but can display completely different optical properties in terms of distribution of photo-absorption and photo-generation rates under various light illuminations, according to theoretical simulation. Such a discrepancy in optical properties due to a wavelength dependent absorption coefficient and the relatively thin Si wafer gives rise to completely different photocurrent evolution for varied wavelengths of illumination. The relationship between the photocurrent ratio of devices, the wavelength and intensity of incident light can be numerically described by an equation, through which the wavelength in the range from 265 to 1050 nm can be accurately determined. Notably, the average root-mean-square error of this wavelength sensor is about 2.30 nm, with a relative error as low as +/- 1.5%, which is much better than other wavelength detectors previously reported. These results suggest that the present wavelength sensor may find potential application for future optoelectronic systems.
机译:在这项工作中,我们开发了一种波长传感器,能够区分波长范围从紫外线(UV)到近红外(NIR)的照明。根据理论模拟,所提出的波长传感器几何上由两个平行堆叠的石墨烯(Gr)/薄Si/Gr异质结器件组成,它们在器件结构上相同,但在不同光照下,在光吸收和光产生速率的分布方面可以显示完全不同的光学特性。由于波长相关的吸收系数和相对较薄的硅晶片在光学特性上的这种差异,在不同的照明波长下会产生完全不同的光电流演化。器件的光电流比、入射光的波长和强度之间的关系可以用一个方程进行数值描述,通过该方程可以精确地确定265至1050 nm范围内的波长。值得注意的是,该波长传感器的平均均方根误差约为2.30 nm,相对误差低至+/-1.5%,这比之前报道的其他波长检测器要好得多。这些结果表明,目前的波长传感器可能会在未来的光电系统中找到潜在的应用。

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