Development of a compact cryogenic Penning trap with permanent magnets: An intermediate step toward the Shanghai Penning Trap
Tianhang Zhang, Jiawei Wang, Jialin Liu, Jingtian Wei, Jiaxuan Ji, Jifei Wu, Zichen Su, Yiming Xie, Liangyu Huang, Ke Yao, Yang Shen, Yaming Zou, Baoren Wei, Bingsheng Tu

TL;DR
This paper presents a compact cryogenic Penning trap using permanent magnets, offering a cost-effective and flexible alternative for ion trapping, with successful demonstration of core functionalities and potential for spectroscopic studies.
Contribution
It introduces a novel cryogenic Penning trap design with permanent magnets, serving as a technical testbed and platform for ion trapping and spectroscopic research.
Findings
Successfully demonstrated ion generation, transport, and confinement.
Established a cryogenic platform for ion cooling and spectroscopy.
Provided a more economical alternative to superconducting magnet traps.
Abstract
Penning traps, renowned for their unparalleled precision in determining fundamental properties such as mass and magnetic moments, are cornerstone instruments in modern physics. Their applications span from nuclear structure studies to stringent tests of quantum electrodynamics and CPT invariance. Although Penning traps have been demonstrated for fundamental studies, often employing superconducting magnets, their high cost and operational complexity remain challenges. In this work, we report the development of a compact cryogenic Penning trap that utilizes a permanent magnet to provide a confining magnetic field, offering a more economical and flexible alternative. We have successfully demonstrated all core functionalities of this system, including ion generation, transport, confinement, manipulation, and signal detection. This compact trap not only serves as a vital technical testbed…
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