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June 13, 2000CERN Bulletin845 citationsOpen Access

Electron-spin-resonance transistors for quantum computing in silicon-germanium heterostructures

RVR. B. VrijenEYEli YablonovitchKWKang Wang

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Abstract

We apply the full power of modern electronic band-structure engineering and epitaxial heterostructures to design a transistor that can sense and control a single-donor electron spin. Spin-resonance transistors may form the technological basis for quantum information processing. One- and two-qubit operations are performed by applying a gate bias. The bias electric field pulls the electron wave function away from the dopant ion into layers of different alloy composition. Owing to the variation of the g factor (Si: g=1. 998, Ge: g=1. 563), this displacement changes the spin Zeeman energy, allowing single-qubit operations. By displacing the electron even further, the overlap with neighboring qubits is affected, which allows two-qubit operations. Certain silicon-germanium alloys allow a qubit spacing as large as 200 nm, which is well within the capabilities of current lithographic techniques. We discuss manufacturing limitations and issues regarding scaling up to a large size computer.

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Cite This Study

Vrijen et al. (2000) studied this question.

synapsesocial.com/papers/69d253b1ec16e0491e4896dfhttps://doi.org/10.1103/physreva.62.012306
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