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A Radio-Frequency Emitter Design for the Low-Frequency Regime in Atomic Experiments

Atomic Physics 2026-01-27 v4 Quantum Gases

Abstract

Radio-frequency (RF) control is a key technique in cold atom experiments. We present a compact and efficient RF circuit based on a capacitive transformer network, where a low-frequency coil operating up to 30MHz serves as both an intrinsic inductor and a power-sharing element. The design enables high current delivery and flexible impedance matching across a wide frequency range. We integrate both broadband and narrowband RF networks into a unified configuration that overcomes the geometric constraints imposed by the metallic chamber. In evaporative cooling, the broadband network allows a reduction of the applied RF input power from 14.7dBW to -3.5dBW, owing to its non-zero coil current even at ultra-low frequencies. This feature enables the Bose-Fermi mixture to be cooled below 10{\mu}K. In a Landau-Zener protocol, the coil driven by the narrowband network transfers 80% of rubidium atoms from |F = 2,mF = 2> to |2,-2> in 1 millisecond, achieving a Rabi frequency of approximately 9 kHz at an input power of 0.1dBW.

Keywords

Cite

@article{arxiv.2502.11549,
  title  = {A Radio-Frequency Emitter Design for the Low-Frequency Regime in Atomic Experiments},
  author = {Yudong Wei and Zhongshu Hu and Yajing Guo and Zhentian Qian and Shengjie Jin and Xuzong Chen and Xiong-jun Liu},
  journal= {arXiv preprint arXiv:2502.11549},
  year   = {2026}
}

Comments

9 pages, 5 figures. Typos corrected