Hydrogenic Spin Quantum Computing in Silicon and Damping and Diffusion in a Chain-Boson Model
dc.contributor.advisor | Hu, Bei-Lok | en_US |
dc.contributor.author | Skinner, Andrew J. | en_US |
dc.contributor.department | Physics | en_US |
dc.contributor.publisher | Digital Repository at the University of Maryland | en_US |
dc.contributor.publisher | University of Maryland (College Park, Md.) | en_US |
dc.date.accessioned | 2006-09-12T05:59:52Z | |
dc.date.available | 2006-09-12T05:59:52Z | |
dc.date.issued | 2006-08-08 | en_US |
dc.description.abstract | We propose an architecture for quantum computing with spin-pair encoded qubits in silicon. Electron-nuclear spin-pairs are controlled by a DC magnetic field and electrode-switched on and off hyperfine interaction. This digital processing is insensitive to tuning errors and easy to model. Electron shuttling between donors enables multi-qubit logic. These hydrogenic spin qubits are transferable to nuclear spin-pairs, which have long coherence times, and electron spin-pairs, which are ideally suited for measurement and initialization. The architecture is scaleable to highly parallel operation. We also study the open-system dynamics of a few two-level systems coupled together and embedded in a crystal lattice. In one case, superconducting quantum interference devices, or SQUIDs, exchange their angular momenta with the lattice. Some decaying oscillations can emerge in a lower energy subspace with a longer coherence time. In another case, the exchange coupling between spins-1/2 is strained by lattice distortions. At a critical point energy level crossing, four well-spaced spins dissipate collectively. This is partially true also for the two- or three-SQUID-chain. These collective couplings can improve coherence times. | en_US |
dc.format.extent | 1459028 bytes | |
dc.format.mimetype | application/pdf | |
dc.identifier.uri | http://hdl.handle.net/1903/3887 | |
dc.language.iso | en_US | |
dc.subject.pqcontrolled | Physics, Condensed Matter | en_US |
dc.subject.pqcontrolled | Physics, General | en_US |
dc.subject.pquncontrolled | Quantum Computing | en_US |
dc.subject.pquncontrolled | Decoherence | en_US |
dc.subject.pquncontrolled | Relaxation | en_US |
dc.subject.pquncontrolled | Open-Systems | en_US |
dc.subject.pquncontrolled | Spin-Chains | en_US |
dc.subject.pquncontrolled | Quantum Brownian Motion | en_US |
dc.title | Hydrogenic Spin Quantum Computing in Silicon and Damping and Diffusion in a Chain-Boson Model | en_US |
dc.type | Dissertation | en_US |
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