Abstract:
Chaotic lidar systems possess inherent anti-disturbance capabilities due to the randomness of chaotic signals. In this work, we leverage the high nonlinearity of AlGaAs micro-ring to develop a sub-centimeter resolution LiDAR. Firstly, an AlGaAs lidar model is built with the LLE (Lugiato-Lefever) equations, showing a theoretically ranging resolution of about 0.9 cm, while the resolution of classic Si3N4 lidar is about 9.7 cm. This improvement stems from the AlGaAs chaotic signal's 8.61 GHz bandwidth, which is about 10 times wider than the Si3N4 micro-ring chaos (∼0.85 GHz). Experimentally, the AlGaAs micro-ring generated a chaotic pulse signal via a 20% duty-cycle square wave (50 μs period), resulting in a peak power 5 times higher than that of continuous chaos. The LiDAR realizes a ranging resolution of ±0.29 cm with a transmit power as low as 10 dBm and constructs 3D scanning point clouds through parallel processing of multi-wavelength optical comb. This high-resolution, low-power LiDAR system could hold applications in scenarios with strong interference or high noise due to its remarkable advantages.
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