A Low-Power Digitally Controlled Oscillator for All Digital Phase-Locked Loops

Author:

Zhao Jun1,Kim Yong-Bin1

Affiliation:

1. Department of Electrical and Computer Engineering, Northeastern University, Boston, MA 02115, USA

Abstract

A low-power and low-jitter 12-bit CMOS digitally controlled oscillator (DCO) design is presented. The Low-Power CMOS DCO is designed based on the ring oscillator implemented with Schmitt trigger inverters. The proposed DCO circuit uses control codes of thermometer type to reduce jitters. Performance of the DCO is verified through a novel All Digital Phase-Locked Loop (ADPLL) designed with a unique lock-in process by employing a time-to-digital converter, where both the frequency of the reference clock and the delay between DCO_output and DCO_clock is measured. A carefully designed reset process reduces the phase acquisition process to two cycles. The ADPLL was implemented using the 32 nm Predictive Technology Model (PTM) at 0.9 V supply voltage, and the simulation results show that the proposed ADPLL achieves 10 and 2 reference cycles of frequency and phase acquisitions, respectively, at 700 MHz with less than 67 ps peak-to-peak jitter. The DCO consumes 2.2 mW at 650 MHz with 0.9 V power supply.

Publisher

Hindawi Limited

Subject

Electrical and Electronic Engineering,Computer Graphics and Computer-Aided Design,Hardware and Architecture

Cited by 8 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. A low power varactor based digitally controlled oscillator design in 180 nm CMOS technology;SN Applied Sciences;2023-10-20

2. Design and Analysis of a Low Power Digital Phase Locked Loop;2016 8th International Conference on Computational Intelligence and Communication Networks (CICN);2016-12

3. Modeling and Analysis of Power Supply Noise Tolerance with Fine-Grained GALS Adaptive Clocks;2016 22nd IEEE International Symposium on Asynchronous Circuits and Systems (ASYNC);2016-05

4. High-Resolution Synthesizable Digitally-Controlled Delay Lines;IEEE Transactions on Nuclear Science;2015-12

5. Two Efficient Dual-Band and Wide-Band Low-Power DCO Designs Using Current Starving Gates, DCV and Reconfigurable Schmitt Triggers in 180 nm;Circuits, Systems, and Signal Processing;2015-07-21

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