A scanning superconducting quantum interference device with single electron spin sensitivity

被引:2
|
作者
Vasyukov, Denis [1 ]
Anahory, Yonathan [1 ]
Embon, Lior [1 ]
Halbertal, Dorri [1 ]
Cuppens, Jo [1 ]
Neeman, Lior [1 ]
Finkler, Amit [1 ]
Segev, Yehonathan [1 ]
Myasoedov, Yuri [1 ]
Rappaport, Michael L. [1 ]
Huber, Martin E. [1 ,2 ]
Zeldov, Eli [1 ]
机构
[1] Weizmann Inst Sci, Dept Condensed Matter Phys, IL-76100 Rehovot, Israel
[2] Univ Colorado, Dept Phys, Denver, CO 80217 USA
基金
欧洲研究理事会;
关键词
DC SQUID; NOISE; MICROSCOPE; VORTICES; PROBES;
D O I
10.1038/NNANO.2013.169
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Superconducting quantum interference devices (SQUIDs) can be used to detect weak magnetic fields and have traditionally been the most sensitive magnetometers available. However, because of their relatively large effective size (on the order of 1 mu m)(1-4), the devices have so far been unable to achieve the level of sensitivity required to detect the field generated by the spin magnetic moment (mu(B)) of a single electron(5,6). Here we show that nanoscale SQUIDs with diameters as small as 46 nm can be fabricated on the apex of a sharp tip. The nano-SQUIDs have an extremely low flux noise of 50 n Phi(0) Hz(-1/2) and a spin sensitivity of down to 0.38 mu(B) Hz(-1/2), which is almost two orders of magnitude better than previous devices(2,3,7,8). They can also operate over a wide range of magnetic fields, providing a sensitivity of 0.6 mu(B) Hz(-1/2) at 1 T. The unique geometry of our nano-SQUIDs makes them well suited to scanning probe microscopy, and we use the devices to image vortices in a type II superconductor, spaced 120 nm apart, and to record magnetic fields due to alternating currents down to 50 nT.
引用
收藏
页码:639 / 644
页数:6
相关论文
共 50 条
  • [41] Microwave response in a topological superconducting quantum interference device
    Pan, Wei
    Soh, Daniel
    Yu, Wenlong
    Davids, Paul
    Nenoff, Tina M.
    SCIENTIFIC REPORTS, 2021, 11 (01)
  • [42] A novel superconducting quantum interference device for biomagnetic measurements
    ZHANG ShuLin
    ZHANG GuoFeng
    WANG YongLiang
    ZENG Jia
    QIU Yang
    LIU Ming
    KONG XiangYan
    XIE XiaoMing
    Chinese Science Bulletin, 2013, 58 (24) : 2917 - 2919
  • [43] A novel superconducting quantum interference device for biomagnetic measurements
    Zhang ShuLin
    Zhang GuoFeng
    Wang YongLiang
    Zeng Jia
    Qiu Yang
    Liu Ming
    Kong XiangYan
    Xie XiaoMing
    CHINESE SCIENCE BULLETIN, 2013, 58 (24): : 2917 - 2919
  • [44] Superconducting quantum interference device without Josephson junctions
    A. A. Burlakov
    V. L. Gurtovoi
    A. I. Il’in
    A. V. Nikulov
    V. A. Tulin
    JETP Letters, 2014, 99 : 169 - 173
  • [45] Superconducting quantum interference device setup for magnetoelectric measurements
    Borisov, P.
    Hochstrat, A.
    Shvartsman, V. V.
    Kleemann, W.
    REVIEW OF SCIENTIFIC INSTRUMENTS, 2007, 78 (10):
  • [46] Microwave response in a topological superconducting quantum interference device
    Wei Pan
    Daniel Soh
    Wenlong Yu
    Paul Davids
    Tina M. Nenoff
    Scientific Reports, 11
  • [47] Quantum Hall-based superconducting interference device
    Seredinski, Andrew
    Draelos, Anne W.
    Arnault, Ethan G.
    Wei, Ming-Tso
    Li, Hengming
    Fleming, Tate
    Watanabe, Kenji
    Taniguchi, Takashi
    Amet, Francois
    Finkelstein, Gleb
    SCIENCE ADVANCES, 2019, 5 (09):
  • [48] Micro-superconducting quantum interference device characteristics
    Hasselbach, K
    Mailly, D
    Kirtley, JR
    JOURNAL OF APPLIED PHYSICS, 2002, 91 (07) : 4432 - 4437
  • [49] Proposal for a beat oscillating superconducting quantum interference device
    Furukawa, H.
    Tomiyama, Sh.
    Hatono, I.
    Tamura, H.
    Japanese Journal of Applied Physics, Part 1: Regular Papers & Short Notes & Review Papers, 1998, 37 (5 A): : 2485 - 2488
  • [50] Design of superconducting quantum interference device for magnetic immunoassays
    Enpuku, Keiji
    Ohba, Akihiro
    Inoue, Katsuhiro
    Soejima, Kazuyuki
    Japanese Journal of Applied Physics, Part 1: Regular Papers and Short Notes and Review Papers, 2004, 43 (9 A): : 6044 - 6049