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基于非线性波混频的光学 4-PSK 半加器的实验演示。

Experimental demonstration of an optics-based 4-PSK half-adder using nonlinear wave mixing.

出版信息

Opt Lett. 2023 Jul 1;48(13):3475-3478. doi: 10.1364/OL.492346.

DOI:10.1364/OL.492346
PMID:37390159
Abstract

We experimentally demonstrate an optics-based half-adder of two 4-phase-shift-keying (4-PSK) data channels using nonlinear wave mixing. The optics-based half-adder has two 4-ary phase-encoded inputs (i.e., S and S) and two phase-encoded outputs (i.e., Sum and Carry). The input quaternary base numbers {0,1,2,3} are represented by 4-PSK signals A and B with four phase levels. Along with the original signals A and B, the phase-conjugate signal copies A* and Band phase-doubled signal copies A and B are also generated to form two signal groups S(A, A, A) and S(B, B*, B). All of the above signals in the same signal group are (a) prepared in the electrical domain with a frequency spacing of Δf and (b) generated optically in the same IQ modulator. When combined with a pump laser, group S mixes with group S in a periodically poled lithium niobate nonlinear (PPLN) device. At the output of the PPLN device, both the Sum (AB) and the Carry (AB + AB) are simultaneously generated with four phase levels and two phase levels, respectively. In our experiment, the symbol rates can be varied between 5 Gbaud and 10 Gbaud. The experimental results show that (i) the measured conversion efficiency of two 5-Gbaud outputs is approximately -24 dB for Sum and approximately -20 dB for Carry, and (ii) the measured optical signal-to-noise ratio (OSNR) penalty of the 10-Gbaud Sum and Carry channels is <10 dB and <5 dB, compared with that of the 5-Gbaud channels at the BER of 3.8 × 10.

摘要

我们通过非线性波混频实验演示了两个四相相移键控(4-PSK)数据通道的基于光学的半加器。基于光学的半加器具有两个 4-进制相位编码输入(即 S 和 S)和两个相位编码输出(即和和进位)。输入的四进制基数{0,1,2,3}分别由具有四个相位电平的 4-PSK 信号 A 和 B 表示。与原始信号 A 和 B 一起,还生成了相位共轭信号副本 A和 B以及相位加倍信号副本 A 和 B,以形成两个信号组 S(A, A*, A)和 S(B, B*, B)。同一信号组中的所有上述信号(a)在电域中用频率间隔 Δf 准备,(b)在同一 IQ 调制器中光生成。当与泵浦激光结合时,组 S 在周期性极化铌酸锂非线性(PPLN)器件中与组 S 混合。在 PPLN 器件的输出端,同时产生具有四个相位电平的和(AB)和具有两个相位电平的进位(AB+AB)。在我们的实验中,符号率可以在 5 Gbaud 和 10 Gbaud 之间变化。实验结果表明:(i) 两个 5-Gbaud 输出的测量转换效率,对于和约为-24dB,对于进位约为-20dB;(ii) 与 5-Gbaud 通道相比,10-Gbaud 和进位通道的测量光信噪比(OSNR)损耗<10dB 和<5dB,在 BER 为 3.8×10时。

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