Li Jianqiang, Sjödin Martin, Karlsson Magnus, Andrekson Peter A
Photonics Laboratory, Department of Microtechnology and Nanoscience, Chalmers University of Technology, Gothenburg SE-412 96, Sweden.
Opt Express. 2012 Apr 23;20(9):10271-82. doi: 10.1364/OE.20.010271.
Recently, an increasing interest has been put on spectrally-efficient multi-carrier superchannels for beyond 100G. Apart from orthogonal frequency-division multiplexing (OFDM) and Nyquist wavelength-division multiplexing (WDM), another low-complexity WDM approach based on transmitter-side pre-filtering and receiver-side duobinary shaping is proposed to build up multi-carrier superchannels. This approach is referred to as receiver-side duobinary-shaped WDM (RS-DBS-WDM). Generation and transmission of a 1.232-Tbit/s 11-carrier superchannel is experimentally demonstrated. The superchannel signal can be well fit inside the passband of multiple 300-GHz reconfigurable optical add and drop multiplexers (ROADMs). In the superchannel scenario, the proposed RS-DBS-WDM is qualitatively compared with OFDM and Nyquist-WDM in terms of implementation complexity. In sum, the proposed RS-DBS-WDM approach features high transceiver analog-bandwidth efficiency, high spectral-efficiency, the absence of specific spectral manipulation, compatibility with conventional WDM technologies and coherent detection algorithms, and comparable implementation penalty.
最近,人们对用于100G以上的频谱高效多载波超通道越来越感兴趣。除了正交频分复用(OFDM)和奈奎斯特波分复用(WDM)之外,还提出了另一种基于发射机侧预滤波和接收机侧双二进制整形的低复杂度WDM方法来构建多载波超通道。这种方法被称为接收机侧双二进制整形波分复用(RS-DBS-WDM)。通过实验演示了1.232-Tbit/s 11载波超通道的生成和传输。该超通道信号可以很好地适配在多个300-GHz可重构光分插复用器(ROADM)的通带内。在超通道场景中,就实现复杂度而言,将所提出的RS-DBS-WDM与OFDM和奈奎斯特-WDM进行了定性比较。总之,所提出的RS-DBS-WDM方法具有高收发信机模拟带宽效率、高频谱效率、无需特定频谱处理、与传统WDM技术和相干检测算法兼容以及可比的实现代价等特点。