A Digital and Compact High-Precision Locking System for Pulse Laser Repetition Frequency
Qibin Zheng, Zhengyi Tao, Lei Wang, Zhaohui Bu, Zuanming Jin, Zhao, Wang

TL;DR
This paper introduces a compact, high-precision laser repetition frequency locking system using error amplification and ADC-based DMTD techniques, significantly improving stability and measurement sensitivity.
Contribution
It presents a novel digital locking system combining error amplification and ADC-based DMTD for high-precision laser frequency stabilization.
Findings
Achieved an Allan deviation of 9.58×10⁻¹⁴ at 10 seconds.
Enhanced laser repetition frequency stability by five orders of magnitude.
Demonstrated robust locking in a femtosecond fiber laser setup.
Abstract
This paper proposes a novel approach that employs error amplification and ADC-based dual-mixer time-difference (ADC-based-DMTD) technique for high-precision locking of laser repetition frequency with compact size. This electronic system consists of two main components: a digitized error amplification module (EAM) and an FPGA-based digital frequency locking module (DFLM). The EAM mainly integrates a configurable frequency generator (CFG), a configurable frequency multiplier (CFM) and a mixer to process the laser pulses and a high-stability reference source (e.g., an atomic clock), enabling high-precision locking of pulse lasers operating at different repetition frequencies. By employing frequency multiplication and mixing, the EAM amplifies the laser's frequency error and performs frequency down-conversion, enhancing measurement sensitivity and reducing the hardware requirements of the…
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Taxonomy
TopicsSemiconductor Lasers and Optical Devices · Laser Material Processing Techniques · Photonic and Optical Devices
