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September 10, 2025Advanced Science3 citationsOpen Access

Serrodyne‐Enabled Dual Electro‐Optic Comb Interferometry for High‐Precision Absolute Ranging and Integration‐Ready Metrology

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XGXiaoyang GuoXYXie YangJZJiawen Zhi

Key Points

  • The system achieves a nanometric measurement precision with an Allan deviation below 0.1 nm at 1 ms integration.
  • Experimental validation confirms high-frequency vibration tracking capabilities up to 100 kHz from a piezoelectric transducer.
  • It demonstrates exceptional versatility in measuring across spatial scales, from meter-level to nanometer-level precision for various applications.
  • Compared to traditional AOM-based systems, it offers reduced RF power consumption and enhanced photonic integration compatibility.

Abstract

Abstract Optical frequency combs (OFCs) have revolutionized precision metrology, enabling highly precise frequency and distance measurements. Dual electro‐optic frequency comb ranging systems traditionally rely on acousto‐optic modulators (AOMs) to shift the local oscillator frequency, mitigating frequency degeneracy but restricting tuning flexibility, response speed, and power efficiency. Here, an AOM‐free dual electro‐optic frequency comb ranging system is introduced, employing a serrodyne‐modulated electro‐optic modulator (EOM) for frequency shifting, achieving superior phase coherence and high‐precision distance measurement. Experimental validation confirms nanometric ranging precision, with Allan deviation below 0.1 nm at 1 ms integration. The system effectively tracks high‐frequency vibrations (up to 100 kHz) from a piezoelectric transducer and enables dynamic 3D surface imaging. Moreover, it detects nanoscale water surface vibrations through precise laser‐ranging analysis. Notably, the system maintains high measurement precision across a wide spatial scale—from meter‐level free‐space ranging to nanometer‐scale vibration sensing—demonstrating exceptional versatility. Compared to conventional AOM‐based approaches, the method provides enhanced flexibility, reduced RF power consumption, and improved photonic integration compatibility, thus offering substantial benefits for precision metrology and high‐resolution sensing applications.

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Cite This Study

Guo et al. (2025) studied this question.

synapsesocial.com/papers/68c1a12d54b1d3bfb60dc42dhttps://doi.org/10.1002/advs.202507459
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