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Nano-displacement sensing by phase-diversity optical digital coherent detection utilizing alternating quadrature
Optics Letters
|December 15, 2023
Summary
We developed a cost-effective nanometer-scale displacement sensing method using alternating quadrature phase modulation (AQPM) and a distributed feedback (DFB) laser. This streamlined system achieves 1.6 nm sensing with 0.6 nm resolution, offering potential for accessible high-precision applications.
Area of Science:
- Optical Metrology
- Nanotechnology
- Sensing Systems
Background:
- Non-contact displacement sensing is crucial for precision manufacturing and scientific research.
- Previous methods using narrow-linewidth (NLW) lasers and 90° optical hybrids were complex and expensive.
- There is a need for more cost-effective and streamlined nanometer-scale sensing solutions.
Purpose of the Study:
- To introduce a simplified and economical nanometer-scale non-contact displacement sensing system.
- To demonstrate the feasibility of using alternating quadrature phase modulation (AQPM) with a distributed feedback (DFB) laser for displacement sensing.
- To evaluate the performance and potential of the new system compared to existing technologies.
Main Methods:
- Implemented a phase-diversity optical digital coherent detection system.
- Utilized alternating quadrature phase modulation (AQPM) reference light generated by a phase modulator and a balanced amplified photodetector (BAP).
- Employed an economical distributed feedback (DFB) laser instead of a narrow-linewidth (NLW) laser.
Main Results:
- Achieved nanometer-scale displacement sensing with a capability of 1.6 nm and a resolution of 0.6 nm using the DFB-AQPM system.
- Observed performance degradation due to phase noise compared to the NLW laser system (0.6 nm sensing, 0.2 nm resolution).
- Demonstrated the effectiveness of the streamlined configuration for high-resolution sensing.
Conclusions:
- The DFB-AQPM system offers a significant advancement in cost-effective nanometer-scale displacement sensing.
- The simplified configuration reduces complexity and cost while maintaining high resolution.
- This technology holds substantial potential for widespread adoption in various high-precision applications.

