Integrated lithium niobate photonic millimeter-wave radar
Sha Zhu, Yiwen Zhang, Jiaxue Feng, Yongji Wang, Kunpeng Zhai, Hanke, Feng, Edwin Yue Bun Pun, Ning Hua Zhu, and Cheng Wang

TL;DR
This paper presents a compact, integrated lithium niobate photonic radar operating in the mmWave V band, achieving high resolution and reconfigurability for advanced sensing and imaging applications.
Contribution
The work demonstrates a wafer-scale integrated photonic radar in the mmWave band using thin-film lithium niobate, overcoming bandwidth and signal integrity limitations of prior integrated systems.
Findings
Achieved 1.50 cm range resolution and 0.067 m/s velocity resolution.
Successfully demonstrated 2D target imaging with 1.50 cm * 1.06 cm resolution.
Operates in the 40-50 GHz V band with continuous tunability.
Abstract
Millimeter-wave (mmWave,>30 GHz) radars are the key enabler in the coming 6G era for high-resolution sensing and detection of targets. Photonic radar provides an effective approach to overcome the limitations of electronic radars thanks to the high frequency, broad bandwidth, and excellent reconfigurability of photonic systems. However, conventional photonic radars are mostly realized in tabletop systems composed of bulky discrete components, whereas the more compact integrated photonic radars are difficult to reach the mmWave bands due to the unsatisfactory bandwidths and signal integrity of the underlining electro-optic modulators. Here, we overcome these challenges and demonstrate a centimeter-resolution integrated photonic radar operating in the mmWave V band (40-50 GHz) based on a 4-inch wafer-scale thin-film lithium niobate (TFLN) technology. The fabricated TFLN mmWave photonic…
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Taxonomy
TopicsAdvanced Photonic Communication Systems · Advanced Fiber Laser Technologies · Advanced Optical Sensing Technologies
