Please wait a minute...
Chin. Phys. B, 2008, Vol. 17(10): 3565-3573    DOI: 10.1088/1674-1056/17/10/007
GENERAL Prev   Next  

Planar ion chip design for scalable quantum information processing

Wan Jin-Yin(万金银), Wang Yu-Zhu(王育竹), and Liu Liang(刘亮)
Key Laboratory for Quantum Optics, Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Shanghai 201800, China
Abstract  We investigate a planar ion chip design with a two-dimensional array of linear ion traps for scalable quantum information processing. Qubits are formed from the internal electronic states of trapped $^{40}$Ca$^{+}$ ions. The segmented electrodes reside in a single plane on a substrate and a grounded metal plate separately, a combination of appropriate rf and DC potentials is applied to them for stable ion confinement. Every two adjacent electrodes can generate a linear ion trap in and between the electrodes above the chip at a distance dependent on the geometrical scale and other considerations. The potential distributions are calculated by using a static electric field qualitatively. This architecture provides a conceptually simple avenue to achieving the microfabrication and large-scale quantum computation based on the arrays of trapped ions.
Keywords:  ion traps      ion chip      quantum information processing  
Received:  27 February 2008      Revised:  24 March 2008      Accepted manuscript online: 
PACS:  37.20.+j (Atomic and molecular beam sources and techniques)  
  03.67.Lx (Quantum computation architectures and implementations)  
Fund: Project supported by the Shanghai Pujiang Programme and the National Basic Research Programme of China (Grant No 2006CB921202).

Cite this article: 

Wan Jin-Yin(万金银), Wang Yu-Zhu(王育竹), and Liu Liang(刘亮) Planar ion chip design for scalable quantum information processing 2008 Chin. Phys. B 17 3565

[1] Numerical analysis of motional mode coupling of sympathetically cooled two-ion crystals
Li-Jun Du(杜丽军), Yan-Song Meng(蒙艳松), Yu-Ling He(贺玉玲), and Jun Xie(谢军). Chin. Phys. B, 2021, 30(7): 073702.
[2] Fast achievement of quantum state transfer and distributed quantum entanglement by dressed states
Liang Tian(田亮), Li-Li Sun(孙立莉), Xiao-Yu Zhu(朱小瑜), Xue-Ke Song(宋学科), Lei-Lei Yan(闫磊磊), Er-Jun Liang(梁二军), Shi-Lei Su(苏石磊), Mang Feng(冯芒). Chin. Phys. B, 2020, 29(5): 050306.
[3] Error-detected single-photon quantum routing using a quantum dot and a double-sided microcavity system
A-Peng Liu(刘阿鹏), Liu-Yong Cheng(程留永), Qi Guo(郭奇), Shi-Lei Su(苏石磊), Hong-Fu Wang(王洪福), Shou Zhang(张寿). Chin. Phys. B, 2019, 28(2): 020301.
[4] Quantum information processing with nitrogen-vacancy centers in diamond
Gang-Qin Liu(刘刚钦), Xin-Yu Pan(潘新宇). Chin. Phys. B, 2018, 27(2): 020304.
[5] Probabilistic direct counterfactual quantum communication
Sheng Zhang(张盛). Chin. Phys. B, 2017, 26(2): 020304.
[6] Fidelity between Gaussian mixed states with quantum state quadrature variances
Hai-Long Zhang(张海龙), Chun Zhou(周淳), Jian-Hong Shi(史建红), Wan-Su Bao(鲍皖苏). Chin. Phys. B, 2016, 25(4): 040304.
[7] Towards quantum-enhanced precision measurements:Promise and challenges
Zhang Li-Jian (张利剑), Xiao Min (肖敏). Chin. Phys. B, 2013, 22(11): 110310.
[8] Quantum information procession with fermions based on charge detection
Tang Li(唐莉) . Chin. Phys. B, 2009, 18(12): 5155-5160.
[9] One-step discrimination scheme on N-particle Greenberger--Horne--Zeilinger bases
Wang Xin-Wen(汪新文), Liu Xiang(刘翔), and Fang Mao-Fa(方卯发). Chin. Phys. B, 2007, 16(5): 1215-1219.
No Suggested Reading articles found!