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Dual-cell structure digitally controlled oscillator with portability for clock generation applications.

Duo Sheng1, Chun-Wei Lin1, Ying-Chen Shih1

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This study introduces a novel dual-cell digitally controlled oscillator (DCO) for improved clock generation. The new design achieves higher frequencies, wider tuning ranges, and better timing resolution, enhancing performance in electronic systems.

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Area of Science:

  • Electrical Engineering
  • Integrated Circuit Design
  • Signal Processing

Background:

  • High-performance clock generation is critical for modern digital systems.
  • Existing digitally controlled oscillators (DCOs) face limitations in frequency range and timing resolution.
  • The need for portable and easily migratable DCO designs is increasing.

Purpose of the Study:

  • To present a novel dual-cell structure for a digitally controlled oscillator (DCO).
  • To enhance maximum output frequency and extend the controllable range of DCOs.
  • To achieve wide output frequency range and high timing resolution simultaneously using a cascaded digitally controlled delay cell.

Main Methods:

  • A dual-cell structure and cell-based design for a DCO were developed.
  • A cascaded structure was employed for the digitally controlled delay cell.
  • The DCO was fabricated using 0.18 µm CMOS technology.

Main Results:

  • The DCO chip occupies a core area of 0.003 mm².
  • The operational frequency range spans from 169 MHz to 522 MHz.
  • The finest delay resolution achieved is 2.2 ps.

Conclusions:

  • The proposed dual-cell DCO significantly increases maximum output frequency and extends the controllable range.
  • The cascaded digitally controlled delay cell enables both wide frequency range and high timing resolution.
  • The DCO's implementation with digital standard cells ensures portability and reduces design time for different processes.