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February 2, 2026Photonics0 citationsOpen Access

Experimental Realization of a Mach–Zehnder-Type Internal-State Atom Interferometer in Sodium Spinor BEC

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JJJun JianZZZhihui ZhaoQZQ. Y. Zhang

Key Points

  • The research aims to establish a Mach–Zehnder-type atom interferometer using sodium spinor Bose–Einstein condensate for precision measurements.
  • Demonstrated a Mach–Zehnder-type atom interferometer using sodium spinor BEC.
  • Applied a three-pulse radio-frequency sequence (π/2–π–π/2) to manipulate magnetic sublevels.
  • Conducted phase-scanning experiments to evaluate visibility across pulse stages.
  • Performed hold-time scanning measurements to observe coherence over time.
  • Visibility remains high (V>0.77) across all pulse stages.
  • Visibility decreases exponentially with increasing hold time while maintaining coherence.
  • The approach simplifies experimental apparatus and preserves high-contrast interference.

Abstract

This study demonstrates a Mach–Zehnder-type internal-state atom interferometer in a sodium F = 1 spinor Bose–Einstein condensate (BEC), which is realized by applying a three-pulse radio-frequency sequence (π/2–π–π/2) to manipulate the two magnetic sublevels |1,−1⟩ and |1,0⟩. Phase-scanning experiments show that the visibility remains at a high level across all three pulse stages (V>0.77). In the hold-time scanning measurements, the visibility decays exponentially with hold time, yet the system maintains good coherence. This work establishes a foundation for precision measurements based on internal-state atom interferometers, as the approach simplifies the experimental apparatus while maintaining good quantum coherence and high-contrast interference fringes.

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Cite This Study

Jian et al. (2026) studied this question.

synapsesocial.com/papers/6980ff08c1c9540dea811b63https://doi.org/10.3390/photonics13020135
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