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Design of a Transceiver Transmitting Power, Clock, and Data over a Single Optical Fiber for Future Automotive Network System

  • Bae, Woorham (Department of Electrical Engineering and Computer Science, Seoul National University) ;
  • Ju, Haram (Department of Electrical Engineering and Computer Science, Seoul National University) ;
  • Jeong, Deog-Kyoon (Department of Electrical Engineering and Computer Science, Seoul National University)
  • Received : 2016.10.10
  • Accepted : 2017.01.15
  • Published : 2017.02.28

Abstract

This paper proposes a new link structure that transmits power, clock, and data through a single optical fiber for a future automotive network. A pulse-position modulation (PPM) technique is adopted to guarantee a DC-balanced signal for robust power transmission regardless of transmitted data pattern. Further, circuit implementations and theoretical analyses for the proposed PPM transceiver are described in this paper. A prototype transceiver fabricated in 65-nm CMOS technology, is used to verify the PPM signaling part of the proposed system. The prototype achieves a $10^{-13}$ bit-error rate and 0.188-UI high frequency jitter tolerance while consuming 14 mW at 800 Mb/s.

Keywords

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