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Related Concept Videos

Steady, Laminar Flow Between Parallel Plates01:17

Steady, Laminar Flow Between Parallel Plates

Understanding steady, laminar flow between parallel plates is essential for analyzing and designing flow in narrow rectangular channels, commonly found in various water conveyance and drainage systems. The Navier-Stokes equations govern fluid motion and are generally challenging to solve due to their nonlinearity. However, simplifications are possible in certain cases, like the steady laminar flow between parallel plates. For this scenario, we assume steady, incompressible, laminar flow.

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Updated: Jul 15, 2026

Terahertz Microfluidic Sensing Using a Parallel-plate Waveguide Sensor
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Double-pass rotating z-cut quartz plate as a rapidly variable waveplate.

Byungjin Lee, Kiryang Kwon, Jae-Yoon Choi

    Optics Express
    |August 13, 2025
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    Summary

    This study introduces a novel tunable waveplate using a rotating quartz plate in a double-pass system. This design minimizes beam displacement, enabling high-speed optical power modulation for atomic, molecular, and optical physics applications.

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    Area of Science:

    • Optics and Photonics
    • Materials Science

    Background:

    • Birefringent crystals are crucial for controlling light polarization.
    • Previous waveplate designs suffer from beam walk-off due to crystal rotation.

    Purpose of the Study:

    • To develop a rapidly tunable waveplate with suppressed beam displacement.
    • To create a high-speed optical power modulator for AMO physics.

    Main Methods:

    • Utilized a rotating z-cut quartz plate in a double-pass configuration.
    • Employed Jones matrix calculations for theoretical description.
    • Conducted polarization-resolved measurements for verification.

    Main Results:

    • Achieved effective suppression of beam walk-off, with lateral shifts below 10 μm.
    • Demonstrated stable retardation across a broad spectral range.
    • Developed a high-speed optical power modulator with 1 ms response time and 1000:1 contrast.

    Conclusions:

    • The double-pass waveplate design offers a compact, robust solution for precise light control.
    • This technology is well-suited for demanding atomic, molecular, and optical physics experiments.
    • The system provides stable and wavelength-independent performance.