Solid State Quantum Computing Using Spin Qubits in Silicon Quantum Dots (QCCM)

Abstract

The project goals are to fabricate qubits in quantum dots in Si/SiGe modulation-doped heterostructures, to characterize and understand those structures, and to develop the technology necessary for a Si/SiGe quantum dot quantum computer. The physical qubit in our approach is the spin of an electron confined in a top-gated silicon quantum dot in a Si/SiGe modulation-doped heterostructure. Operations on such a qubit may be performed by controlling the voltages on gates in-between neighboring quantum dots. A quantum computer and qubits in silicon offer potential advantages, both fundamental and practical. Electron spins in silicon quantum dots are expected to have long coherence times. Silicon has an isotope, Si, which has zero nuclear spin and thus no nuclear magnetic moment. As a result, electron spins in silicon have longer coherence times than they would in the presence of a fluctuating nuclear spin background. From a practical perspective, modern classical computers are made in silicon, and one hopes that this will lead to synergy in the future with a silicon quantum computer. This QCCM includes both theory and experiment focusing on (i) the development of qubits in the form of electron spins in silicon quantum dots, (ii) the measurement and manipulation of those qubits, and (iii) the science essential for understanding the properties of such qubits.

Open PDF

Document Details

Document Type
Technical Report
Publication Date
Jul 16, 2009
Accession Number
ADA509101

Entities

People

  • Alex Rimberg
  • Gerhard Klimeck
  • Mark Eriksson
  • Mark Friesen
  • Max Lagally
  • Paul Von Allmen
  • Robert H Blick
  • Robert Joynt
  • Stephen A Lyon
  • Susan Coppersmith

Organizations

  • University of Wisconsin–Madison

Tags

Communities of Interest

  • Advanced Electronics

DTIC Thesaurus Topics

  • Electromagnetic Fields
  • Electrons
  • Energy Bands
  • Energy Levels
  • Exclusion Principle
  • Fabrication
  • Heterojunctions
  • Magnetic Fields
  • Materials
  • Poisson Equation
  • Quantum Computing
  • Quantum Dots
  • Quantum Properties
  • Quantum Wells
  • Semiconductors
  • Spin-Orbit Interaction
  • Three Dimensional

Fields of Study

  • Physics

Readers

  • Quantum Dot Semiconductor Device Photonics and Graphene Optoelectronic Materials and THz Physics.
  • Quantum spin resonance or Electron Paramagnetic Resonance spectroscopy.

Technology Areas

  • Microelectronics
  • Quantum Computing
  • Quantum Science - Quantum Dots