Quantum computing by optical control of electron spins
Ren-Bao Liu, Wang Yao, L. J. Sham

TL;DR
This paper reviews advances and challenges in implementing large-scale quantum computing using optical control of electron spins in quantum dots, focusing on system design, decoherence mitigation, and quantum network integration.
Contribution
It proposes designs for local qubit nodes and their integration into large-scale quantum networks using optical control and photonic structures.
Findings
Feasibility of optical control of electron spins in quantum dots
Designs for local qubit nodes with individual control
Estimation of resources for factoring 15 with Shor's algorithm
Abstract
We review the progress and main challenges in implementing large-scale quantum computing by optical control of electron spins in quantum dots (QDs). Relevant systems include self-assembled QDs of III-V or II-VI compound semiconductors (such as InGaAs and CdSe), monolayer fluctuation QDs in compound semiconductor quantum wells, and impurity centers in solids such as P-donors in silicon and nitrogen-vacancy centers in diamond. The decoherence of the electron spin qubits is discussed and various schemes for countering the decoherence problem are reviewed. We put forward designs of local nodes consisting of a few qubits which can be individually addressed and controlled. Remotely separated local nodes are connected by photonic structures (microcavities and waveguides) to form a large-scale distributed quantum system or a quantum network. The operation of the quantum network consists of…
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