Spin quantum computation in silicon nanostructures
S. Das Sarma, Rogerio de Sousa, Xuedong Hu, Belita Koiller

TL;DR
This review discusses silicon-based spin qubits, focusing on decoherence mechanisms, exchange coupling variations due to bandstructure effects, and the implications for scalable quantum computing architectures.
Contribution
It provides a comprehensive analysis of spin decoherence channels, bandstructure effects on exchange gates, and compares silicon donor qubits with quantum dot systems.
Findings
Isotopic purification enhances electron spin coherence times.
Valley interference causes significant variations in exchange coupling.
Spectral diffusion is a key decoherence mechanism in silicon spin qubits.
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…
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