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Non-selective optical wavelength-division multiplexing devices based on a-SiC:H multilayer heterostuctures

机译:基于a-SiC:H多层异质结构的非选择性光波分复用器件

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摘要

In this paper we present results on the optimization of multilayered a-SiC:H heterostructures for wavelength-division (de) multiplexing applications. The non selective WDM device is a double heterostructure in a glass/ITO/a-SiC:H (p-i-n) /a-SiC:H(-p) /a-Si:H(-i')/a-SiC:H (-n')/ITO configuration. The single or the multiple modulated wavelength channels are passed through the device, and absorbed accordingly to its wavelength, giving rise to a time dependent wavelength electrical field modulation across it. The effect of single or multiple input signals is converted to an electrical signal to regain the information (wavelength, intensity and frequency) of the incoming photogenerated carriers. Here, the (de) multiplexing of the channels is accomplished electronically, not optically. This approach offers advantages in terms of cost since several channels share the same optical components; and the electrical components are typically less expensive than the optical ones. An electrical model gives insight into the device operation.
机译:在本文中,我们介绍了用于波分(de)复用应用的多层a-SiC:H异质结构的优化结果。非选择性WDM器件是玻璃/ ITO / a-SiC:H(pin)/ a-SiC:H(-p)/ a-Si:H(-i')/ a-SiC:H中的双重异质结构(-n')/ ITO配置。单个或多个调制波长通道穿过设备,并相应地吸收其波长,从而在整个设备上产生与时间有关的波长电场调制。将单个或多个输入信号的影响转换为电信号,以重新获得传入的光生载流子的信息(波长,强度和频率)。此处,通道的(解)多路传输是通过电子方式而非光学方式完成的。由于多个通道共享相同的光学组件,因此该方法在成本方面具有优势。电气元件通常比光学元件便宜。电气模型可以深入了解设备的运行情况。

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