Nature Communications · 2015 · 176 citations · 55 references
Photonic RF waveform generation offers ultrawide bandwidth and flexibility compared to electronic methods, yet suffers from limited integration and slow reconfiguration speeds. The authors propose and fabricate an integrated silicon photonic architecture for RF waveform generation and processing. The chip, built in a standard semiconductor foundry, generates programmable RF bursts or continuous waveforms using only off‑chip light sources, electrical drives, and detectors, and incorporates on‑chip optical delay elements to precisely shape waveform features. The device achieves 4‑nanosecond pulse on/off switching, a reconfiguration speed three orders of magnitude faster than thermal tuning.
Photonic methods of radio-frequency waveform generation and processing provide performance and flexibility over electronic methods due to the ultrawide bandwidth offered by the optical carriers. However, they suffer from lack of integration and slow reconfiguration speed. Here we propose an architecture of integrated photonic RF waveform generation and processing, and implement it on a silicon chip fabricated in a semiconductor manufacturing foundry. Our device can generate programmable RF bursts or continuous waveforms with only the light source, electrical drives/controls and detectors being off chip. It turns on and off an individual pulse in the RF burst within 4 nanoseconds, achieving a reconfiguration speed three orders of magnitude faster than thermal tuning. The on-chip optical delay elements offers an integrated approach to accurately manipulate individual RF waveform features without constrains set by the speed and timing jitter of electronics, and should find broad applications ranging from high-speed wireless to defense electronics.
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