English

Spinor matterwave control with nanosecond spin-dependent kicks

Atomic Physics 2023-05-29 v4 Quantum Physics

Abstract

Significant aspects of advanced quantum technology today rely on rapid control of atomic matterwaves with hyperfine Raman transitions. Unfortunately, efficient Raman excitations are usually accompanied by uncompensated dynamic phases and coherent spin-leakages, preventing accurate and repetitive transfer of recoil momentum to large samples. We provide systematic study to demonstrate that the limitations can be substantially overcame by dynamically programming an adiabatic pulse sequence. Experimentally, counter-propagating frequency-chirped pulses are programmed on an optical delay line to parallelly drive five Δm=0\Delta m=0 hyperfine Raman transitions of 85^{85}Rb atoms for spin-dependent kick (SDK) within τ=40\tau=40~nanoseconds, with an fSDK97.6%f_{\rm SDK}\approx 97.6\% inferred fidelity. Aided by numerical modeling, we demonstrate that by alternating the chirps of successive pulses in a balanced fashion, accumulation of non-adiabatic errors including the spin-leakages can be managed, while the dynamic phases can be robustly cancelled. Operating on a phase-stable delay line, the method supports precise, fast, and flexible control of spinor matterwave with efficient Raman excitations.

Keywords

Cite

@article{arxiv.2202.09709,
  title  = {Spinor matterwave control with nanosecond spin-dependent kicks},
  author = {Liyang Qiu and Lingjing Ji and Jiangyong Hu and Yizun He and Yuzhuo Wang and Saijun Wu},
  journal= {arXiv preprint arXiv:2202.09709},
  year   = {2023}
}

Comments

18 pages, 13 figures, improved clarity with substantial revisions

R2 v1 2026-06-24T09:46:09.161Z