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Canceling Fundamental Fractional Spurs Due to Self-Interference in a Digital Phase-Locked Loop

2024/05/07 by Zhong Gao, Robert Bogdan Staszewski, Masoud Babaie
Engineering · #Iterative Learning Control Systems #Extremum Seeking Control Systems #Advanced Control Systems Design

paper · pdf · doi:10.1109/jssc.2024.3393478

Abstract

Parasitic coupling between the building blocks within a fractional- <italic xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink">N</i> phase-locked loop (PLL) can result in noticeable spurs in its output spectrum, thus affecting the PLL’s usability in ultralow jitter applications. In this article, we focus on a chief contributor—“self-interference” caused by coupling from the PLL’s frequency-reference (FREF) clock buffer to the RF oscillator, while exploiting the fact that the resulting phase-disturbance pattern: 1) exhibits a sinusoidal shape and 2) is synchronized with the PLL’s output clock phase. Accordingly, we propose a digitally intensive pattern-aware approach to suppress the fundamental fractional spur raised by this self-interference mechanism. The proposed technique is applied to a fabricated digital PLL chip and reduces the worst spur level by 13 dB, thus proving its effectiveness.

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