Jun Xiao

Coulomb Crystallization of Highly Charged Ni^12+ Ions in a Linear Paul Trap

Shaolong Chen [1], Zhiqiang Zhou [1,2], Guosheng Zhang [1,2], Jun Xiao [3], Yao Huang [1], Kelin Gao [1,4], Hua Guan [1,4,5]

Abstract

Optical clocks have garnered widespread attention due to their unparalleled precision in time-frequency standards, geodetic measurements, and fundamental physics research. Among emerging developments, highly charged ion (HCI)-based optical clocks have attracted significant scientific interest owing to their exceptional resilience against electromagnetic perturbations and enhanced sensitivity to variations in the fine-structure constant ($α$). While the recent successful demonstration of an Ar$^{13+}$ optical clock has validated the feasibility of HCI-based systems, Ni$^{12+}$ -- featuring an ultranarrow clock transition linewidth -- stands out as a superior candidate for achieving HCI optical clocks with $10^{-19}$ level uncertainty and stability. In this work, we report the Coulomb crystallization of nickel highly charged ions (Ni-HCIs). Through a precision deceleration and sympathetic cooling protocol in a room-temperature Paul trap, high-energy Ni-HCI bunches were sympathetically cooled from megakelvin to the 100-millikelvin range using laser-cooled Be$^{+}$ ions. This work represents a pivotal step toward the realization of an optical clock based on the Ni$^{12+}$ ion.

Probing Multiple Electric Dipole Forbidden Optical Transitions in Highly Charged Nickel Ions

Shi-Yong Liang [1,2,7], Ting-Xian Zhang [1,7], Hua Guan [1,2], Qi-Feng Lu [3], Jun Xiao [3], Shao-Long Chen [1,2,8], Yao Huang [1,2], Yong-Hui Zhang [1], Cheng-Bin Li [1], Ya-Ming Zou [3], Ji-Guang Li [4], Zong-Chao Yan [5,1], Andrei Derevianko [6], Ming-Sheng Zhan [1], Ting-Yun Shi [1], Ke-Lin Gao [1,2]

Abstract

Highly charged ions (HCIs) are promising candidates for the next generation of atomic clocks, owing to their tightly bound electron cloud, which significantly suppresses the common environmental disturbances to the quantum oscillator. Here we propose and pursue an experimental strategy that, while focusing on various HCIs of a single atomic element, keeps the number of candidate clock transitions as large as possible. Following this strategy, we identify four adjacent charge states of nickel HCIs that offer as many as six optical transitions. Experimentally, we demonstrated the essential capability of producing these ions in the low-energy compact Shanghai-Wuhan Electron Beam Ion Trap. We measured the wavelengths of four magnetic-dipole ($M$1) and one electric-quadrupole ($E$2) clock transitions with an accuracy of several ppm with a novel calibration method; two of these lines were observed and characterized for the first time in controlled laboratory settings. Compared to the earlier determinations, our measurements improved wavelength accuracy by an order of magnitude. Such measurements are crucial for constraining the range of laser wavelengths for finding the "needle in a haystack" narrow lines. In addition, we calculated frequencies and quality factors, evaluated sensitivity of these six transitions to the hypothetical variation of the electromagnetic fine structure constant $α$ needed for fundamental physics applications. We argue that all the six transitions in nickel HCIs offer intrinsic immunity to all common perturbations of quantum oscillators, and one of them has the projected fractional frequency uncertainty down to the remarkable level of 10$^{-19}$.

A low-energy compact Shanghai-Wuhan electron beam ion trap for extraction of highly charged ions

Shiyong Liang [1,2,3], Qifeng Lu [4,5], Xincheng Wang [6], Yang Yang [4,5], Ke Yao [4,5], Yang Shen [4,5], Baoren Wei [4,5], Jun Xiao [4,5], Shaolong Chen [1,2,3], Pengpeng Zhou [1,2,3], Wei Sun [1,2], Yonghui Zhang [1], Yao Huang [1,2], Hua Guan [1,2], Xin Tong [1], Chengbin Li [1], Yaming Zou [4,5], Tingyun Shi [1,7], Kelin Gao [1,2,7]

Abstract

A low-energy, compact and superconducting electron beam ion trap (the Shanghai-Wuhan EBIT or SW-EBIT) for extraction of highly charged ions is presented. The magnetic field in the central drift tube of the SW-EBIT is approximately 0.21 T produced by a pair of high-temperature superconducting coils. The electron-beam energy of the SW-EBIT is in the range of 30-4000 eV, and the maximum electron-beam current is up to 9 mA. Acting as a source of highly charged ions, the ion-beam optics for extraction is integrated, including an ion extractor and an einzel lens. A Wien filter is then used to measure the charge-state distribution of the extracted ions. In this work, the tungsten ions below the charge state of 15 have been produced, extracted, and analyzed. The charge-state distributions and spectra in the range of 530-580 nm of tungsten ions have been measured simultaneously with the electron-beam energy of 279 eV and 300 eV, which preliminarily indicates that the 549.9 nm line comes from $W^{14+}$.

Tungsten spectroscopy in the EUV observed in SH-HtscEBIT

Wenxian Li [1,2], Zhan Shi [3], Yang Yang [1,2], Jun Xiao [1,2], Tomas Brage [3], Roger Hutton [1,2], Yaming Zou [1,2]

Abstract

We have recorded extreme ultraviolet spectra from $\mathrm{W^{11+}}$ to $\mathrm{W^{15+}}$ ions using a new flat field spectrometer installed at the Shanghai high temperature superconducting electron beam ion trap. The spectra were recorded at beam energies ranging between 200 eV and 400 eV and showed spectral lines/transition arrays in the 170 - 260 Å region. The charge states and spectra transitions were identified by comparison with calculations using a detailed relativistic configuration interaction method and collisional-radiative model, both incorporated in the Flexible Atomic Code. Atomic structure calculations showed that the dominant emission arises from $5d$ $\rightarrow$ $5p$ and $5p$ $\rightarrow$ $5s$ transitions. The work also identified the ground-state configuration of $W^{13+}$ as $4f^{13}5s^2$ both theoretically and experimentally.