A novel direct digital frequency synthesizer employing complementary dual-phase latch-based architecture
Abdel Martínez Alonso, Masaya Miyahara, Akira Matsuzawa · 2015
This paper introduces a novel Direct Digital Frequency Synthesizer (DDFS) based on Complementary Dual-Phase Latch-Based digital design. Compared to conventional DDFS using Flip-Flop as synchronizing element, the proposed approach allows to double the sampling data rate while enhancing the clock skew tolerance and system latency. The design features a 24 bits pipelined Phase Accumulator (PA) and a 14×10 bits Phase to Amplitude Converter (PAC). The Phase to Amplitude Converter module is compressed using Quarter Wave Symmetry technique and is entirely made up of combinational logic inserted into 12 Complementary Dual-Phase Latch-Based pipeline stages. The logic is represented in the form of Sum of Product (SoP) terms obtained from a 14×10 bits sinusoidal Look-Up-Table. The proposed DDFS is designed and simulated based on TSMC 65nm CMOS standard-cell technology. A maximum data sampling rate of 6.8 GS/s and 0.022 W/ GS/s Power Efficiency (PE) is expected.