Quantum dots with single-atom precision

被引:1
|
作者
Foelsch, Stefan [1 ]
Martinez-Blanco, Jesus [1 ]
Yang, Jianshu [1 ]
Kanisawa, Kiyoshi [2 ]
Erwin, Steven C. [3 ]
机构
[1] Paul Drude Inst Festkorperelekt, D-10117 Berlin, Germany
[2] NTT Corp, NTT Basic Res Labs, Atsugi, Kanagawa 2430198, Japan
[3] Naval Res Lab, Ctr Computat Mat Sci, Washington, DC 20375 USA
关键词
Atoms - Electron energy levels - Nanocrystals - Quantum optics;
D O I
10.1038/NNANO.2014.129
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Quantum dots are often called artificial atoms because, like real atoms, they confine electrons to quantized states with discrete energies. However, although real atoms are identical, most quantum dots comprise hundreds or thousands of atoms, with inevitable variations in size and shape and, consequently, unavoidable variability in their wavefunctions and energies. Electrostatic gates can be used to mitigate these variations by adjusting the electron energy levels(1-3), but the more ambitious goal of creating quantum dots with intrinsically digital fidelity by eliminating statistical variations in their size, shape and arrangement remains elusive(4-9). We used a scanning tunnelling microscope to create quantum dots with identical, deterministic sizes. By using the lattice of a reconstructed semiconductor surface to fix the position of each atom, we controlled the shape and location of the dots with effectively zero error. This allowed us to construct quantum dot molecules whose coupling has no intrinsic variation but could nonetheless be tuned with arbitrary precision over a wide range. Digital fidelity opens the door to quantum dot architectures free of intrinsic broadening-an important goal for technologies from nanophotonics(10) to quantum information processing(11,12) as well as for fundamental studies of confined electrons(13-17).
引用
收藏
页码:505 / 508
页数:4
相关论文
共 50 条
  • [31] Single-atom gating of quantum-state superpositions
    Moon, Christopher R.
    Lutz, Christopher P.
    Manoharan, Hari C.
    NATURE PHYSICS, 2008, 4 (06) : 454 - 458
  • [32] Single-atom gating of quantum-state superpositions
    Christopher R. Moon
    Christopher P. Lutz
    Hari C. Manoharan
    Nature Physics, 2008, 4 : 454 - 458
  • [33] Single-atom gating and magnetic interactions in quantum corrals
    Ngo, Anh T.
    Kim, Eugene H.
    Ulloa, Sergio E.
    PHYSICAL REVIEW B, 2017, 95 (16)
  • [34] Single-atom quantum memory with degenerate atomic levels
    Reshetov, V. A.
    Popov, E. N.
    JOURNAL OF PHYSICS B-ATOMIC MOLECULAR AND OPTICAL PHYSICS, 2012, 45 (17)
  • [35] AIM-ing for design and assembly of heterogeneous catalyst with single-atom or near-single-atom precision
    Hupp, Joseph
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2019, 257
  • [36] Single-atom manipulation mechanisms during a quantum corral construction
    Hla, SW
    Braun, KF
    Rieder, KH
    PHYSICAL REVIEW B, 2003, 67 (20)
  • [37] Probing quantum coherence in single-atom electron spin resonance
    Willke, Philip
    Paul, William
    Natterer, Fabian D.
    Yang, Kai
    Bae, Yujeong
    Choi, Taeyoung
    Fernandez-Rossier, Joaquin
    Heinrich, Andreas J.
    Lutz, Christoper P.
    SCIENCE ADVANCES, 2018, 4 (02):
  • [38] Single-atom energy-conversion device with a quantum load
    Van Horne, Noah
    Yum, Dahyun
    Dutta, Tarun
    Haenggi, Peter
    Gong, Jiangbin
    Poletti, Dario
    Mukherjee, Manas
    NPJ QUANTUM INFORMATION, 2020, 6 (01)
  • [39] Single-atom spintronics
    Hua, Susan Z.
    Sullivan, Matthew R.
    Armstrong, Jason N.
    Transactions of Nonferrous Metals Society of China (English Edition), 2006, 16 (SUPPL. 1): : 146 - 153
  • [40] SINGLE-ATOM DETECTION
    ALKEMADE, CTJ
    APPLIED SPECTROSCOPY, 1981, 35 (01) : 1 - 14