Spin quantum computation in silicon nanostructures
arXiv:cond-mat/0411755 · doi:10.1016/j.ssc.2004.12.037
Abstract
Proposed silicon-based quantum-computer architectures have attracted attention because of their promise for scalability and their potential for synergetically utilizing the available resources associated with the existing Si technology infrastructure. Electronic and nuclear spins of shallow donors (e.g. phosphorus) in Si are ideal candidates for qubits in such proposals because of their long spin coherence times due to their limited interactions with their environments. For these spin qubits, shallow donor exchange gates are frequently invoked to perform two-qubit operations. We discuss in this review a particularly important spin decoherence channel, and bandstructure effects on the exchange gate control. Specifically, we review our work on donor electron spin spectral diffusion due to background nuclear spin flip-flops, and how isotopic purification of silicon can significantly enhance the electron spin dephasing time. We then review our calculation of donor electron exchange coupling in the presence of degenerate silicon conduction band valleys. We show that valley interference leads to orders of magnitude variations in electron exchange coupling when donor configurations are changed on an atomic scale. These studies illustrate the substantial potential that donor electron/nuclear spins in silicon have as candidates for qubits and simultaneously the considerable challenges they pose. In particular, our work on spin decoherence through spectral diffusion points to the possible importance of isotopic purification in the fabrication of scalable solid state quantum computer architectures. We also provide a critical comparison between the two main proposed spin-based solid state quantum computer architectures, namely, shallow donor bound states in Si and localized quantum dot states in GaAs.
14 pages. Review article submitted to Solid State Communications
References in corpus (6)
- Spintronics: Fundamentals and applications
- Single-shot read-out of an individual electron spin in a quantum dot
- Electron spin phase relaxation of phosphorus donors in nuclear spin enriched silicon
- Qubit coherence control in a nuclear spin bath
- Gate errors in solid state quantum computation
- Many-particle localization by constructed disorder: enabling quantum computing with perpetually coupled qubits
Cited by in corpus (31)
- Triplet-Singlet Spin Relaxation via Nuclei in a Double Quantum Dot
- Quantum theory for electron spin decoherence induced by nuclear spin dynamics in semiconductor quantum computer architectures: Spectral diffusion of localized electron spins in the nuclear solid-state environment
- Charge fluctuation induced dephasing of exchange coupled spin qubits
- Analytical Solution of Electron Spin Decoherence Through Hyperfine Interaction in a Quantum Dot
- Hyperfine interactions in silicon quantum dots
- Physical mechanisms of interface-mediated intervalley coupling in Si
- Exchange coupling in silicon quantum dots: Theoretical considerations for quantum computation
- Electrical activation and electron spin coherence of ultra low dose antimony implants in silicon
- Intervalley coupling for interface-bound electrons in silicon: An effective mass study
- Electron spin as a spectrometer of nuclear spin noise and other fluctuations
- Entanglement between charge qubits induced by a common dissipative environment
- Decoherence induced by anisotropic hyperfine interaction in Si spin qubits
- Charge qubits in semiconductor quantum computer architectures: Tunnel coupling and decoherence
- Hubbard model description of silicon spin qubits: charge stability diagram and tunnel coupling in Si double quantum dots
- Nuclear Spins as Quantum Memory in Semiconductor Nanostructures
- Quantum theory of the charge stability diagram of semiconductor double quantum dot systems
- Decoherence of spin qubits due to a nearby charge fluctuator in gate-defined double dots
- Wavefunction considerations for the central spin decoherence problem in a nuclear spin bath
- Qubit coherence control in a nuclear spin bath
- Spin relaxation in quantum dots with random spin-orbit coupling
- Entanglement purification without controlled-NOT gates by using the natural dynamics of spin chains
- Coherent spin dynamics of rare-earth doped crystals in the high-cooperativity regime
- Effects of Interface Disorder on Valley Splitting in SiGe/Si/SiGe Quantum Wells
- Neural network based deep learning analysis of semiconductor quantum dot qubits for automated control
- Impact of the valley degree of freedom on the control of donor electrons near a Si/SiO_2 interface
- Deterministic preparation of Dicke states of donor nuclear spins in silicon by cooperative pumping
- Nuclear Electric Resonance for Spatially-Resolved Spin Control via Pulsed Optical Excitation in the UV-Visible Spectrum
- Optimal generation of single-qubit operation from an always-on interaction by algebraic decoupling
- Optical Nuclear Electric Resonance in LiNa: Selective Addressing of Nuclear Spins Through Pulsed Lasers
- Model for spin coupling disorder effects on the susceptibility of antiferromagnetic nanochains
- Detection of low energy single ion impacts in micron scale transistors at room temperature