Lu Guo-Wei, Sakamoto Takahide, Kawanishi Tetsuya
National Institute of Information and Communications Technology (NICT), 4-2-1 Nukui-Kitmachi, Koganei, Tokyo 184-8795,
Opt Express. 2013 Mar 11;21(5):6213-23. doi: 10.1364/OE.21.006213.
In order to adapt to the dynamics in the future optical networks, we propose a flexible high-order QAM transmitter using a tandem in-phase/quadrature (IQ) modulators to synthesize different high-order quadrature amplitude modulation (QAM) formats, such as 16QAM, 32 or 36QAM and 64QAM. To generate high-order QAMs, an offset-QAM is firstly generated using an IQ modulator driven by electronics with reduced modulation-level, and then mapped to other quadrants through another following IQ modulator configured as a standard quadrature phase-shift keying (QPSK) modulator. All of the embedded sub-Mach-Zehnder modulators are operated in push-pull configurations to avoid introducing excess phase chirp. In contrast with the schemes based on a single IQ modulator driven by multilevel electronics or a highly-integrated parallel modulator, by deploying commercially-available optical modulators and driving electronics with reduced modulation-level, the transmitter complexity in optics and electronics is well-balanced. In the case of generating optical 64QAM, different from another tandem scheme deploying dual-drive IQ modulator driven by independent four binary streams, less phase chirp is observed in our proposed scheme, and comparable implementation penalty is obtained even without applying additional specific compensation algorithm in the coherent receiver. Moreover, thanks to the tandem structure and the deployment of QPSK modulator, the obtained high-order QAM is naturally differentially coded, which is helpful to solve the phase ambiguity at coherent receiver. We experimentally demonstrate the generations of these high-order QAMs including 16QAM, 32/36QAM and 64QAM, and confirm the error-free operations with comparable BER performance to the "electrical" approach based on a single IQ modulator.
为了适应未来光网络的动态变化,我们提出了一种灵活的高阶QAM发射机,它使用串联的同相/正交(IQ)调制器来合成不同的高阶正交幅度调制(QAM)格式,如16QAM、32或36QAM以及64QAM。为了生成高阶QAM,首先使用由具有降低调制电平的电子设备驱动的IQ调制器生成偏移QAM,然后通过另一个配置为标准正交相移键控(QPSK)调制器的后续IQ调制器将其映射到其他象限。所有嵌入式子马赫-曾德尔调制器均以推挽配置运行,以避免引入过多的相位啁啾。与基于由多级电子设备驱动的单个IQ调制器或高度集成的并行调制器的方案相比,通过部署商用光调制器和具有降低调制电平的驱动电子设备,光学和电子方面的发射机复杂度得到了很好的平衡。在生成光64QAM的情况下,与另一种部署由独立的四个二进制流驱动的双驱动IQ调制器的串联方案不同,在我们提出的方案中观察到的相位啁啾较少,并且即使在相干接收机中不应用额外的特定补偿算法,也能获得相当的实现代价。此外,由于串联结构和QPSK调制器的部署,所获得的高阶QAM自然地进行了差分编码,这有助于解决相干接收机处的相位模糊问题。我们通过实验演示了这些高阶QAM(包括16QAM、32/36QAM和64QAM)的生成,并确认了与基于单个IQ调制器的“电”方法具有可比误码率性能的无误码操作。