H. Li

Laser cooling and trapping of $^{224}$Ra$^+$

M. Fan [1], Roy A. Ready [1], H. Li [1], S. Kofford [1], R. Kwapisz [1], C. A. Holliman [1], M. S. Ladabaum [1], A. N. Gaiser [2,3], J. R. Griswold [4], A. M. Jayich [1]

Abstract

We report laser cooling and trapping of $^{224}$Ra$^+$ ions. This was realized via two-step photoionization loading of radium into an ion trap. A robust source for $^{224}$Ra atoms, which have a 3.6-day half-life, was realized with an effusive oven containing $^{228}$Th, which has a 1.9-yr half-life, which continuously generates $^{224}$Ra via its $α$-decay. We characterized the efficacy of this source and found that after depleting built-up radium the thorium decay provides a continuous source of radium atoms suitable for ion trapping. The vacuum system has been sealed for more than 6 months and continues to trap ions on demand. We also report a measurement of the $^{224}$Ra $7s^2\ ^1$S$_0 \rightarrow 7s7p\ ^1$P$_1$ transition frequency: 621 043 830(60) MHz, which is helpful for efficient photoionization. With this measurement and previous isotope shift measurements we find that the frequency of the same transition in $^{226}$Ra is 621 037 830(60) MHz, which disagrees with the most precise measurement, 621 038 489(15) MHz, which is used for the recommended value in the National Institute of Standards and Technology Atomic Spectra Database.

Functional surface ion traps on a 12-inch glass wafer for quantum applications

J Tao, J Likforman, P Zhao, H. Li, T Henner, Y Lim, W Seit, Luca Guidoni, C Tan

Abstract

We report large-scale fabrication of perfectly functional radio frequency (RF) surface ion traps on a 12-inch glass substrate with a standard CMOS-compatible backend process. Established 12-inch foundry backend process of electroplated Cu with Au finish are employed to fabricate the surface electrodes directly on the glass wafer substrate. We tested a trap by loading it with laser-cooled 88 Sr + ions. The trap shows a stable operation with RF amplitude in the range 100-230 V at 33 MHz frequency. The ion lifetime is on the order of 30 minutes for a pressure in the vacuum chamber of 5 x 10-11 mbar, which demonstrates an exciting potential for future implementation of quantum computing system with a standard foundry process on CMOS compatible and cost-effective platform.

Edge Temperature Ring Oscillation Modulated by Turbulence Transition for Sustaining Stationary Improved Energy Confinement Plasmas

A. D. Liu [1], X. L. Zou [2], M. K. Han [3,4], T. B. Wang [4,5], C. Zhou [1], M. Y. Wang [1,6], Y. M. Duan [7], G. Verdoolaege [5], J. Q. Dong [4], Z. X. Wang [3], X. Feng [1], J. L. Xie [1], G. Zhuang [1], W. X. Ding [1], S. B. Zhang [7], Y. Liu [7], H. Q. Liu [7], L. Wang [7], Y. Y. Li [7], Y. M. Wang [7], B. Lv [7], G. H. Hu [7], Q. Zhang [7], S. X. Wang [7], H. L. Zhao [7], C. M. Qu [1], Z. X. Liu [1], Z. Y. Liu [1], J. Zhang [1], J. X. Ji [1], X. M. Zhong [1], T. Lan [1], H. Li [1], W. Z. Mao [1], W. D. Liu [1], EAST Team

Abstract

A reproducible stationary improved confinement mode (I-mode) has been achieved recently in the Experimental Advanced Superconducting Tokamak, featuring good confinement without particle transport barrier, which could be beneficial to solving the heat flux problem caused by edge localized modes (ELM) and the helium ash problem for future fusion reactors. The microscopic mechanism of sustaining stationary I-mode, based on the coupling between turbulence transition and the edge temperature oscillation, has been discovered for the first time. A radially localized edge temperature ring oscillation (ETRO) with azimuthally symmetric structure ($n=0$,$m=0$) has been identified and it is caused by alternative turbulence transitions between ion temperature gradient modes (ITG) and trapped electron modes (TEM). The ITG-TEM transition is controlled by local electron temperature gradient and consistent with the gyrokinetic simulations. The self-organizing system consisting with ETRO, turbulence and transport transitions plays the key role in sustaining the I-mode confinement. These results provide a novel physics basis for accessing, maintaining and controlling stationary I-mode in the future.