• Title/Summary/Keyword: Clock recovery circuit

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A QPSK clock recovery circuit based on a combined filter (결합 보간 필터를 이용한 QSPK Clock Recovery 회로)

  • 신은정;장일순;김응배;조경록
    • The Journal of Korean Institute of Communications and Information Sciences
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    • v.26 no.6B
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    • pp.840-847
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    • 2001
  • 본 논문에서는 클럭 동기 회로에 사용되는 다차 함수 형태의 결합 필터를 선형 근사화 하는 알고리즘을 제안하고 이를 하드웨어로 구현한다. 정합 필터와 보간필터에 의한 클럭 동기회로는 수신기를 전 디지털 회로를 구현하기 위해 선호되지만 계산량이 증가하는 단점이 있다. 본 논문에서는 정합 필터의 임펄스 응답을 갖는 결합 보간 필터를 구현하고, base 함수의 적용을 선형 근사화 하여 필터의 계산량을 감소시켰다. 본 논문에서는 선형 근사화된 결합 보간 필터의 동작을 Matlab을 통한 시뮬레이션과 ALTERA Chip으로 테스트하였다.

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Burst-mode Clock and Data Recovery Circuit in Passive Optical Network Implemented with a Phase-locked Loop (수동 광 가입자망에서의 위상고정루프를 이용한 버스트모드 클럭/데이터 복원회로)

  • Lee, Sung-Chul;Moon, Sung-Young;Moon, Gyu
    • Journal of the Institute of Electronics Engineers of Korea SD
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    • v.45 no.4
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    • pp.21-26
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    • 2008
  • In this paper, a novel 622Mbps burst-mode clock and data recovery (CDR) circuit is proposed for passive optical network (PON) applications. The CDR circuits are implemented with 0.35um CMOS process technology. Locking dynamics is accomplished with instantaneous feature and data are sampled at an optimal timing. This is realized by seven different delay configurations, which are generated from precisely-controlled delay buffers. The experimental results show that the proposed CDR circuits are operating as expected, recovering an incoming 622Mbps burst-mode input data without errors.

A CMOS 5.4/3.24-Gbps Dual-Rate CDR with Enhanced Quarter-Rate Linear Phase Detector

  • Yoo, Jae-Wook;Kim, Tae-Ho;Kim, Dong-Kyun;Kang, Jin-Ku
    • ETRI Journal
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    • v.33 no.5
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    • pp.752-758
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    • 2011
  • This paper presents a clock and data recovery circuit that supports dual data rates of 5.4 Gbps and 3.24 Gbps for DisplayPort v1.2 sink device. A quarter-rate linear phase detector (PD) is used in order to mitigate high speed circuit design effort. The proposed linear PD results in better jitter performance by increasing up and down pulse widths of the PD and removes dead-zone problem of charge pump circuit. A voltage-controlled oscillator is designed with a 'Mode' switching control for frequency selection. The measured RMS jitter of recovered clock signal is 2.92 ps, and the peak-to-peak jitter is 24.89 ps under $2^{31}-1$ bit-long pseudo-random bit sequence at the bitrate of 5.4 Gbps. The chip area is 1.0 mm${\times}$1.3 mm, and the power consumption is 117 mW from a 1.8 V supply using 0.18 ${\mu}m$ CMOS process.

40 GHz optical phase lock loop circuit for ultrahigh speed optical time division demultiplexing system (초고속 광시분할 다중시스템의 DEMUX용 40GHz 위상 동기 회로)

  • 김동환
    • Korean Journal of Optics and Photonics
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    • v.11 no.5
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    • pp.330-334
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    • 2000
  • A new pha~e lock loop (PLL) IS proposed and demonstrated fat clock recovery from 40 Gblt/s time-dIvision-multiplexed (TDM) optical pulse tri.lin, The proposed clock lecovery scheme lmproves the Jitter effecl cOlmng from the clock. pulse laser of harmonically-mode locked flber laser The cross-corrdation frequency component between the optical Signa] and an optical clock pulse tram is deteCled as a fonr-wave-mixing (FWM) SIgnal generated in SOA. The lock-in freqnency range of the clod. recovery IS found to be within 10 KHz. 0 KHz.

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Theoretical and experimental study on ultrahigh-speed clock recovery system with optical phase lock loop using TOAD (TOAD를 이용한 40 Gbit/s OPLL Clock Recovery 시스템에 대한 연구)

  • Ki, Ho-Jin;Jhon, Young-Min;Byun, Young-Tae;Woo, Deok-Ha
    • Korean Journal of Optics and Photonics
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    • v.16 no.1
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    • pp.21-26
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    • 2005
  • 10 GHz clock recovery from 40 Gbit/s optical time-division-multiplexed(OTDM) signal pulses was experimentally demonstrated using an optical phase lock loop based on a terahertz optical asymmetric demultiplexer(TOAD) with a local-reference-oscillator-free electronic feedback circuit. The 10 GHz clock was successfully extracted from 40 Gbit/s signals. The SNR of the time-extracted 10 GHz RF signal to the side components was larger than 40 dB. Also we performed numerical simulation about the extraction process of phase information in TOAD. The lock-in frequency range of the clock recovery is found to be 10 kHz.

Design of a Clock and Data Recovery Circuit for High-Speed Serial Data Link Application (고속 시리얼 데이터 링크용 클럭 및 데이터 복원회로 설계)

  • 오운택;이흥배;소병춘;황원석;김수원
    • Proceedings of the IEEK Conference
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    • 2003.07b
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    • pp.1193-1196
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    • 2003
  • This paper proposes a 2x oversampling method with a smart sampling for a clock and data recovery(CDR) circuit in a 2.5Gbps serial data link. In the conventional 2x oversampling method, the "bang-bang" operation of the phase detection produces a systematic jitter in CDR. The smart sampling in phase detection helps the CDR to remove the "bang-bang" operation and to improve the jitter performance. The CDR with the proposed 2x oversampling method is designed using Samsung 0.25${\mu}{\textrm}{m}$ process parameters and verified by simulation. Simulation result shows the proposed 2x oversampling method removes the systematic jitter.e systematic jitter.

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Design of 10Gbps CMOS Receiver Circuits for Fiber-Optic Communication (광통신용 10Gbps CMOS 수신기 회로 설계)

  • Park, Sung-Kyung;Lee, Young-Jae;Byun, Sang-Jin
    • Journal of IKEEE
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    • v.14 no.4
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    • pp.283-290
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    • 2010
  • This study is on the design of 10Gbps CMOS receiver circuits for fiber-optic communication. The receiver is made up of a photodiode, a transimpedance amplifier, a limiting amplifier, an equalizer, a clock and data recovery loop circuit, and a demultiplexer or demux with some auxiliary circuits including I/O circuits. Various wideband or high-speed circuit techniques are harnessed to realize a feasible, effective, and reliable receiver for a SONET fiber-optic standard, OC-192.

Design of a 2.5 Gb/s Clock and Data Recovery Circuit (2.5 Gb/s 클럭 및 데이터 복원 회로의 설계)

  • Lee, Young-Mi;Woo, Dong-Sik;Lee, Ju-Sang;Kim, Kang-Wook;Yu, Sang-Dae
    • Proceedings of the KIEE Conference
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    • 2002.11c
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    • pp.593-596
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    • 2002
  • A design of clock and data recovery (CDR) circuit for the SONET OC-48 using a standard 0.18 ${\mu}m$ CMOS process has been performed. The phase detector and the charge pump must be able to operate at the 2.5 Gb/s input data speed and also accurately compare phase errors to reduce clock jitter. As a phase detector, the Hogge phase detector is selected but two transistors are added to improve the performance of the D-F/F. The charge pump was also designed to be placed indirectly input and output. A general ring oscillator topology is presented and simulated. It provides five-phase outputs and 220 MHz to 3.12 GHz tuning range.

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3.125Gbps Reference-less Clock and Data Recovery using 4X Oversampling (4X 오버샘플링을 이용한 3.125Gbps급 기준 클록이 없는 클록 데이터 복원 회로)

  • Jang, Hyung-Wook;Kang, Jin-Ku
    • Journal of IKEEE
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    • v.10 no.1 s.18
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    • pp.10-15
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    • 2006
  • In this paper, a clock and data recovery (CDR) circuit for a serial link with a half rate 4x oversampling phase and frequency detector structure without a reference clock is described. The phase detector (PD) and frequency detector (FD)are designed by 4X oversampling method. The PD, which uses bang-bang method, finds the phase error by generating four up/down signal and the FD, which uses the rotational method, finds the frequency error by generating up/down signal made by the PD output. And the six signals of the PD and the FD control an amount of current that flows through the charge pump. The VCO composed of four differential buffer stages generates eight differential clocks. Proposed circuit is designed using the 0.18um CMOS technology and operating voltage is 1.8V. With a 4X oversampling PD and FD technique, tracking range of 24% at 3.125Gbps is achieved.

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A 13.56 MHz Radio Frequency Identification Transponder Analog Front End Using a Dynamically Enabled Digital Phase Locked Loop

  • Choi, Moon-Ho;Yang, Byung-Do;Kim, Nam-Soo;Kim, Yeong-Seuk;Lee, Soo-Joo;Na, Kee-Yeol
    • Transactions on Electrical and Electronic Materials
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    • v.11 no.1
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    • pp.20-23
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    • 2010
  • The analog front end (AFE) of a radio frequency identification transponder using the ISO 14443 type A standard with a 100% amplitude shift keying (ASK) modulation is proposed in this paper and verified by circuit simulations and measurements. This AFE circuit, using a 13.56 MHz carrier frequency, consists of a rectifier, a modulator, a demodulator, a regulator, a power on reset, and a dynamically enabled digital phase locked loop (DPLL). The DPLL, with a charge pump enable circuit, was used to recover the clock of a 100% modulated ASK signal during the pause period. A high voltage lateral double diffused metal-oxide semiconductor transistor was used to protect the rectifier and the clock recovery circuit from high voltages. The proposed AFE was fabricated using the $0.18\;{\mu}m$ standard CMOS process, with an AFE core size of $350\;{\mu}m\;{\times}\;230\;{\mu}m$. The measurement results show that the DPLL, using a demodulator output signal, generates a constant 1.695 MHz clock during the pause period of the 100% ASK signal.