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Thin-film based dispersion compensation technology and challenges

机译:基于薄膜的色散补偿技术和挑战

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Thin-film (TF) based dispersion compensators are of necessity some form of allpass filter. Whether these allpass filters are cast in the form of a coupled or a cascaded cavity structure, they can provide compact, low-loss, and highly stable dispersion compensation thereby having the potential of becoming important future components in both optical time-division multiplexing (OTDM) and wavelength division multiplexing (WDM) systems. In this paper, the salient points in the development of these devices are discussed up to the present state of the technology. Particular emphasis is placed on TF coupled cavity allpass (CCAP) filters as devices that provide only third-order dispersion compensation (TODC), having a group delay response that is purely quadratic. These CCAP filters are shown to have evolved over a number of important steps, from a hybrid two-cavity device, to a completely TF two-cavity single-surface filter, and finally to a dual-surface multi-reflection four-cavity device. The adjustable hybrid coupled cavity allpass filter provides TODC between 2.0 and 15.5 ps~3 over a bandwidth between 3.6 and 1.2 nm respectively with a center wavelength tunable over an 8 nm range and the four-cavity multi-reflection completely TF device offers TODC between 0.37 ps~3 and 3.2 ps~3 over a 10 nm bandwidth with a center wavelength tunable over a 10 nm range. Important issues, such as the need to increase the TODC figure of merit, which is directly proportional to the number of cavities and the number of surface reflections, of these devices without incurring large loss penalties are discussed in the context of some of the important technological challenges that need to be addressed and solved before TF dispersion compensators can be effectively employed in optical systems as well as successfully compete with other existing dispersion-compensation technologies.
机译:基于薄膜(TF)的色散补偿器必须采用某种形式的全通滤波器。无论这些全通滤波器是以耦合腔还是级联腔结构的形式铸造的,它们都可以提供紧凑,低损耗和高度稳定的色散补偿,从而有可能成为光时分多路复用(OTDM)中重要的未来组件)和波分复用(WDM)系统。在本文中,将讨论这些设备开发中的要点,直到目前的技术水平。 TF耦合腔全通(CCAP)滤波器特别受重视,因为它们仅提供三阶色散补偿(TODC),其群延迟响应纯粹是二次的。这些CCAP滤光片显示出经过许多重要步骤的发展,从混合型两腔器件到完全TF两腔单面滤光片,再到双面多反射四腔器件。可调混合耦合腔全通滤波器分别在3.6和1.2 nm之间的带宽上提供2.0至15.5 ps〜3的TODC,中心波长在8 nm范围内可调,四腔多反射完全TF器件在0.37之间提供TODC在10 nm带宽上具有ps〜3和3.2 ps〜3,中心波长在10 nm范围内可调。在某些重要技术的背景下,讨论了这些设备的重要问题,例如是否需要增加TODC品质因数,该品质因数与腔的数量和表面反射的数量成正比,而不会造成大的损失损失。在将TF色散补偿器有效地用于光学系统以及与其他现有色散补偿技术成功竞争之前,需要解决的挑战。

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