Q. Zhang

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.

Physical implementation of holonomic quantum computation in decoherence-free subspaces with trapped ions

Xin-Ding Zhang [1], Q. Zhang, Z. D. Wang [2]

Abstract

We propose a feasible scheme to achieve holonomic quantum computation in a decoherence-free subspace (DFS) with trapped ions. By the application of appropriate bichromatic laser fields on the designated ions, we are able to construct two noncommutable single-qubit gates and one controlled-phase gate using the holonomic scenario in the encoded DFS.