4.7 Article

Single-electron Spin Resonance in a Quadruple Quantum Dot

Journal

SCIENTIFIC REPORTS
Volume 6, Issue -, Pages -

Publisher

NATURE PUBLISHING GROUP
DOI: 10.1038/srep31820

Keywords

-

Funding

  1. Strategic Information and Communications R&D Promotion Programme
  2. RIKEN Incentive Research Project
  3. Yazaki Memorial Foundation for Science and Technology Research Grant
  4. Japan Prize Foundation Research Grant
  5. Advanced Technology Institute Research Grant
  6. Murata Science Foundation Research Grant
  7. Izumi Science and Technology Foundation Research Grant
  8. TEPCO Memorial Foundation Research Grant
  9. IARPA project Multi-Qubit Coherent Operations through Copenhagen University
  10. Mercur [Pr-2013-0001]
  11. DFG-TRR160
  12. BMBF - Q.com-H [16KIS0109]
  13. DFH/UFA [CDFA-05-06]
  14. CREST, JST
  15. ImPACT Program of Council for Science, Technology and Innovation (Cabinet Office, Government of Japan)
  16. [25800173]
  17. [26220710]
  18. [26709023]
  19. [26630151]
  20. [16H00817]
  21. Grants-in-Aid for Scientific Research [16H00817, 26220710] Funding Source: KAKEN

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Electron spins in semiconductor quantum dots are good candidates of quantum bits for quantum information processing. Basic operations of the qubit have been realized in recent years: initialization, manipulation of single spins, two qubit entanglement operations, and readout. Now it becomes crucial to demonstrate scalability of this architecture by conducting spin operations on a scaled up system. Here, we demonstrate single-electron spin resonance in a quadruple quantum dot. A few-electron quadruple quantum dot is formed within a magnetic field gradient created by a micro-magnet. We oscillate the wave functions of the electrons in the quantum dots by applying microwave voltages and this induces electron spin resonance. The resonance energies of the four quantum dots are slightly different because of the stray field created by the micro-magnet and therefore frequency-resolved addressable control of each electron spin resonance is possible.

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