High-Stability Cryogenic System for Quantum Computing with Compact Packaged Ion Traps

被引:15
|
作者
Spivey R.F. [1 ]
Inlek I.V. [1 ,2 ]
Jia Z. [3 ]
Crain S. [1 ,2 ]
Sun K. [3 ]
Kim J. [1 ,4 ]
Vrijsen G. [1 ]
Fang C. [1 ]
Fitzgerald C. [5 ]
Kross S. [5 ]
Noel T. [5 ]
Kim J. [1 ,4 ]
机构
[1] Department of Electrical and Computer Engineering, Duke University, Durham, 27708, NC
[2] IonQ, Inc., College Park, 20740, MD
[3] Department of Physics, Duke University, Durham, 27708, NC
[4] SKKU Advanced Institute of Nanotechnology, Sungkyunkwan University, Suwon
[5] ColdQuanta, Inc., Boulder, 80301, CO
关键词
Optomechanical design; quantum computing; trapped ions;
D O I
10.1109/TQE.2021.3125926
中图分类号
学科分类号
摘要
Cryogenic environments benefit ion trapping experiments by offering lower motional heating rates, collision energies, and an ultrahigh vacuum (UHV) environment for maintaining long ion chains for extended periods of time. Mechanical vibrations caused by compressors in closed-cycle cryostats can introduce relative motion between the ion and the wavefronts of lasers used to manipulate the ions. Here, we present a novel ion trapping system where a commercial low-vibration closed-cycle cryostat is used in a custom monolithic enclosure. We measure mechanical vibrations of the sample stage using an optical interferometer, and observe a root-mean-square relative displacement of 2.4 nm and a peak-to-peak displacement of 17 nm between free-space beams and the trapping location. We packaged a surface ion trap in a cryopackage assembly that enables easy handling while creating a UHV environment for the ions. The trap cryopackage contains activated carbon getter material for enhanced sorption pumping near the trapping location, and source material for ablation loading. Using ^{171}Yb^{+} as our ion, we estimate the operating pressure of the trap as a function of package temperature using phase transitions of zig-zag ion chains as a probe. We measured the radial mode heating rate of a single ion to be 13 quanta/s on average. The Ramsey coherence measurements yield 330-ms coherence time for counter-propagating Raman carrier transitions using a 355-nm mode-locked pulse laser, demonstrating the high optical stability. © 2020 IEEE.
引用
收藏
相关论文
共 50 条
  • [1] Packaged CMOS cryogenic characterization for quantum computing applications
    Imroze, Fiheon
    Nikbakhtnasrabadi, Fatemeh
    Danilin, Sergey
    Muhammad, Ali
    Ahmad, Meraj
    Giagkoulovits, Christos
    Heidari, Hadi
    Weides, Martin
    2022 29TH IEEE INTERNATIONAL CONFERENCE ON ELECTRONICS, CIRCUITS AND SYSTEMS (IEEE ICECS 2022), 2022,
  • [2] Compact radio-frequency resonator for cryogenic ion traps
    Gandolfi, D.
    Niedermayr, M.
    Kumph, M.
    Brownnutt, M.
    Blatt, R.
    REVIEW OF SCIENTIFIC INSTRUMENTS, 2012, 83 (08):
  • [3] DEVELOPMENT OF A HIGH-STABILITY CRYOGENIC SAPPHIRE DIELECTRIC RESONATOR
    LANGHAM, CD
    GALLOP, JC
    IEEE TRANSACTIONS ON INSTRUMENTATION AND MEASUREMENT, 1993, 42 (02) : 96 - 98
  • [4] COMPACT ATOMIC SOURCE HAS HIGH-STABILITY
    BROWNE, J
    MICROWAVES & RF, 1986, 25 (13) : 160 - 161
  • [5] Modelling of miniature ion traps for quantum computing
    Brkic, B
    Griffith, EJ
    Taylor, S
    Ralph, JF
    QUANTUM COMMUNICATION, MEASUREMENT AND COMPUTING, 2004, 734 : 159 - 162
  • [6] A High-stability Compact Optical System for Integrating Sphere Cold Atom Clock
    Wang, Xiumei
    He, Jin
    Wang, Yunjia
    Wang, Wenming
    Wang, Yifei
    Li, Shiguang
    Wang, Weili
    Liu, Guodong
    Zhu, Xi
    Zhang, Chengyuan
    Chen, Yanjun
    Wang, Liang
    Liu, Yaxuan
    Gao, Lianshan
    Chen, Jingbiao
    2022 JOINT CONFERENCE OF THE EUROPEAN FREQUENCY AND TIME FORUM AND IEEE INTERNATIONAL FREQUENCY CONTROL SYMPOSIUM (EFTF/IFCS), 2022,
  • [7] Cryogenic setup for trapped ion quantum computing
    Brandl, M. F.
    van Mourik, M. W.
    Postler, L.
    Nolf, A.
    Lakhmanskiy, K.
    Paiva, R. R.
    Moller, S.
    Daniilidis, N.
    Haffner, H.
    Kaushal, V.
    Ruster, T.
    Warschburger, C.
    Kaufmann, H.
    Poschinger, U. G.
    Schmidt-Kaler, F.
    Schindler, P.
    Monz, T.
    Blatt, R.
    REVIEW OF SCIENTIFIC INSTRUMENTS, 2016, 87 (11):
  • [8] Arrays of elliptical ion traps for parallel quantum computing
    DeVoe, RG
    QUANTUM COMPUTING AND QUANTUM COMMUNICATIONS, 1999, 1509 : 438 - 446
  • [9] HIGH-STABILITY SHUTTLE POINTING SYSTEM
    VANRIPER, R
    PROCEEDINGS OF THE SOCIETY OF PHOTO-OPTICAL INSTRUMENTATION ENGINEERS, 1981, 284 : 74 - 93
  • [10] Minimally complex ion traps as modules for quantum communication and computing
    Nigmatullin, Ramil
    Ballance, Christopher J.
    de Beaudrap, Niel
    Benjamin, Simon C.
    NEW JOURNAL OF PHYSICS, 2016, 18