3D-printed micro ion trap technology for quantum information applications.

Xu, Shuqi; Xia, Xiaoxing; Yu, Qian; Parakh, Abhinav; Khan, Sumanta; Megidish, Eli; You, Bingran; Hemmerling, Boerge et al. · Nature · 2025

basic_science · Level V

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Abstract

Trapped-ion applications, such as in quantum information processing<sup>1</sup>, precision measurements<sup>2-5</sup>, optical clocks<sup>6</sup> and mass spectrometry<sup>7</sup>, rely on specialized high-performance ion traps. The last three of these applications typically use traditional machining to customize macroscopic 3D Paul traps<sup>8</sup>, whereas quantum information processing experiments usually rely on photolithographic techniques to miniaturize the traps and meet scalability requirements<sup>9,10</sup>. Using photolithography, however, it is challenging to fabricate the complex 3D electrode structures required for optimal confinement. Here we demonstrate a high-resolution 3D printing technology based on two-photon polymerization (2PP)<sup>11</sup> that is capable of fabricating large arrays of high-performance miniaturized 3D traps. We show that 3D-printed ion traps combine the advantages, such as strong radial confinement, of traditionally machined 3D traps with on-chip miniaturization. We trap calcium ions in 3D-printed ion traps with radial trap frequencies ranging from 2 MHz to 24 MHz. The tight confinement eases ion cooling requirements and allows us to implement high-quality Rabi oscillations with Doppler cooling only. Also, we demonstrate a two-qubit gate with a Bell-state fidelity of 0.978 ± 0.012. With 3D printing technology, the design freedom is greatly expanded without sacrificing scalability and precision, so that ion trap geometries can be optimized for higher performance and better functionality.