HIGH-SPEED FREQUENCY-SWITCHING SYNTHESIZER USING FRACTIONAL N-PHASE-LOCKED LOOP

被引:4
作者
ADACHI, H
KOSUGI, H
UWANO, T
NAKABE, K
机构
[1] MATUSHIDA COMMUN IND CO LTD,DIV CORP ENGN,YOKOHAMA,KANAGAWA 226,JAPAN
[2] MATSUSHITA ELECT IND CO LTD,COMPONENTS RES LAB,KADOMA,OSAKA 571,JAPAN
来源
ELECTRONICS AND COMMUNICATIONS IN JAPAN PART II-ELECTRONICS | 1994年 / 77卷 / 04期
关键词
FREQUENCY SYNTHESIZER; FAST FREQUENCY SWITCHING; PHASE NOISE; FRACTIONAL N PHASE-LOCKED LOOP; FILTER SWITCHING;
D O I
10.1002/ecjb.4420770403
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
A fractional N phase-locked loop frequency synthesizer has been developed for small-size and low-power applications. It has fast frequency switching and low-phase noise. The fractional N-frequency synthesizer realizes fast switching by the high-frequency reference signal and by widening the loop bandwidth. However, when the bandwidth was widened, deterioration of phase noise is observed. Then the loop bandwidth which is necessary for fast frequency switching and which gives low-phase noise performance is determined. Based on these conditions, loop filter switching was studied which realized fast switching by widening the loop bandwidth and the low-phase noise performance by making the loop bandwidth narrow after the frequency switching. In the conventional filter switching, VCO control voltage fluctuates at the time of switching and the frequency switching time becomes longer. A new method is proposed which gives small switching fluctuation and which can shorten the frequency switching time. Finally, the synthesizer circuit in the 900-MHz band was fabricated and the lock-up time of 1.3 ms, the phase noise of -120 dBc/Hz at 50 kHz offset from carrier and spurious level of -83 dBc were obtained.
引用
收藏
页码:20 / 28
页数:9
相关论文
共 50 条
[31]   High Frequency Resolution X-Band Frequency Synthesizer based on a Phase-Locked Optoelectronic Oscillator [J].
Peng, Huanfa ;
Xu, Yongchi ;
Guo, Rui ;
Du, Huayang ;
Chen, Jingbiao ;
Chen, Zhangyuan .
2018 ASIA COMMUNICATIONS AND PHOTONICS CONFERENCE (ACP), 2018,
[32]   Dual Phase Detector Based on Delay Locked Loop for High Speed Applications [J].
Gholami, M. ;
Ardeshir, G. .
INTERNATIONAL JOURNAL OF ENGINEERING, 2014, 27 (04) :517-521
[33]   Design of optimized high precision fractional-N frequency synthesizer with low spur [J].
Zhou, Shuai .
MICROWAVE AND OPTICAL TECHNOLOGY LETTERS, 2020, 62 (07) :2525-2530
[34]   Pulse phase-frequency detectors in high-speed frequency synthesizers [J].
Kacharmina, E. G. ;
Timofeev, A. A. ;
Chudnikov, V. V. ;
Shakhtarin, B. I. .
2018 SYSTEMS OF SIGNAL SYNCHRONIZATION, GENERATING AND PROCESSING IN TELECOMMUNICATIONS (SYNCHROINFO), 2018,
[35]   A Fractional-N Divider-Less Phase-Locked Loop With a Subsampling Phase Detector [J].
Chang, Wei-Sung ;
Huang, Po-Chun ;
Lee, Tai-Cheng .
IEEE JOURNAL OF SOLID-STATE CIRCUITS, 2014, 49 (12) :2964-2975
[36]   An all-digital frequency locked loop (ADFLL) with a pulse output direct digital frequency synthesizer (DDFS) and an adaptive phase estimator [J].
Gothandaraman, AK ;
Islam, SK .
2003 IEEE RADIO FREQUENCY INTEGRATED CIRCUITS (RFIC) SYMPOSIUM, DIGEST OF PAPERS, 2003, :303-306
[37]   A Phase-Interpolator-Based Fractional Counter for All-Digital Fractional-N Phase-Locked Loop [J].
Choi, Young-Ho ;
Kim, Byungsub ;
Sim, Jae-Yoon ;
Park, Hong-June .
IEEE TRANSACTIONS ON CIRCUITS AND SYSTEMS II-EXPRESS BRIEFS, 2017, 64 (03) :249-253
[38]   A Low-Noise and Low-Power Frequency Synthesizer Using Offset Phase-Locked Loop in 0.13-μm CMOS [J].
Park, PyoungWon ;
Park, Dongmin ;
Cho, SeongHwan .
IEEE MICROWAVE AND WIRELESS COMPONENTS LETTERS, 2010, 20 (01) :52-54
[39]   A 2.25-2.7 GHz Area-Efficient Subharmonically Injection- Locked Fractional-N Frequency Synthesizer With a Fast-Converging Correlation Loop [J].
Tseng, Yen-Hsiang ;
Yeh, Che-Wei ;
Liu, Shen-Iuan .
IEEE TRANSACTIONS ON CIRCUITS AND SYSTEMS I-REGULAR PAPERS, 2017, 64 (04) :811-822
[40]   A straightforward Σ-Δ fractional-N Phase-Locked Loop HDL design for RF applications [J].
El Oualkadi, Ahmed ;
Flandre, Denis .
NEW ASPECTS OF MICROELECTRONICS, NANOELECTRONICS, OPTOELECTRONICS, 2008, :84-88