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JSSC 2024第8期RF & Wireless28nm

A 26-Gb/s Framed-Pulsewidth Modulation Transceiver for Extended Reach Optical Links Woohyun Kwon , Hyosup Won, Taeho Kim, Sejun Jeon , Soon-Won Kwon , Ha-Il Song

提出一种高速帧脉冲宽度调制收发器,通过时域调制方案提高频谱效率。
28nm CMOS, 0.9V, 26Gb/s
帧脉冲宽度调制收发器频谱效率色散容忍CMOS
采用帧脉冲宽度调制(FPWM)提高频谱效率
使用逐次逼近(SA)和加权和(WS)算法提高功率和面积效率
在铜线和光纤通道中实现色散容忍
Abstract
This article proposes a high-speed framed- pulsewidth modulation (FPWM) transceiver that applies a time- domain modulation scheme for increased spectrum efficiency. The achieved coding gain is 75%, indicating that the minimum pulsewidth is increased by 1.75 times compared to an NRZ scheme with an identical data rate. Such bandwidth reduction renders dispersion tolerance both in copper and optical channels. The encoder and decoder employ successive approximation (SA) and weighted sum (WS) algorithms for power-and-area efficiency. The FPWM demonstrates an 8-dB SNR gain over NRZ at 15-km single-mode fiber (SMF) transmission while maintaining identical back-to-back performance. The FPWM scheme shows 6-dB higher receiver sensitivity at a bit error rate (BER) of 2e-5 than the PAM-4 signaling in 26-Gb/s back-to-back transmission and achieves 4-dB SNR gain at 20-km transmission. The test chip is fabricated in a 28-nm CMOS process and packaged in a flip-chip chip scale package (FCCSP). The test chip occupies 2.2 × 2.0 mm, including bidirectional two lanes and two phase- locked loops (PLLs), while it consumes 262 mW per lane from a 0.9-V supply. The measured Tx random jitter is 265 fs rms.