研究目的
Investigating the design and performance of a differential dual-modulus prescaler based on an injection-locked frequency divider (ILFD) for satellite low-noise block (LNB) down-converters.
研究成果
The proposed differential dual-modulus prescaler achieved a wide locking range of 2.1–10 GHz and low energy consumption of 0.4 pJ at a 1.4-V supply voltage. It demonstrated tolerance to phase-difference deviations of less than 90 degrees. However, performance degraded with larger deviations and lower supply voltages. The fully-locking operation was verified at a 1.4-V supply voltage, meeting the requirements for LNB down-converters.
研究不足
The operational frequency range decreases as the phase-difference deviation increases beyond 90 degrees. The prescaler's performance degrades with decreasing supply voltage, leading to quasi- and non-locking operations.
1:Experimental Design and Method Selection:
The study involved designing a differential dual-modulus prescaler using an ILFD and a cascaded differential divider in a 130-nm CMOS process. The design aimed to achieve a wide locking range and low energy consumption.
2:Sample Selection and Data Sources:
The prototype chip was fabricated and tested under various conditions to evaluate its performance, including sensitivity to phase-difference deviations and supply voltage variations.
3:List of Experimental Equipment and Materials:
A 130-nm CMOS process was used for fabrication. Measurement equipment included a vector network analyzer for phase-difference control and a signal analyzer for output spectrum analysis.
4:Experimental Procedures and Operational Workflow:
The prescaler's performance was evaluated through measurements of input sensitivity, operational frequency range, phase noise, and tolerance to phase-difference deviations. The impact of supply voltage reduction on performance was also assessed.
5:Data Analysis Methods:
The measurement results were compared with simulation results to validate the design. The performance was analyzed in terms of locking range, energy consumption, and spectral purity under various conditions.
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