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Decoherence of electron spin qubits in Si-based quantum computers

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arxiv cond-mat/0203319 v2 pith:ZS5JILG2 submitted 2002-03-15 cond-mat.mtrl-sci cond-mat.mes-hall

Decoherence of electron spin qubits in Si-based quantum computers

classification cond-mat.mtrl-sci cond-mat.mes-hall
keywords quantumrelaxationratebounddecoherenceelectronstrainimportant
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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abstract

Direct phonon spin-lattice relaxation of an electron qubit bound by a donor impurity or quantum dot in SiGe heterostructures is investigated. The aim is to evaluate the importance of decoherence from this mechanism in several important solid-state quantum computer designs operating at low temperatures. We calculate the relaxation rate $1/T_1$ as a function of [100] uniaxial strain, temperature, magnetic field, and silicon/germanium content for Si:P bound electrons. The quantum dot potential is much smoother, leading to smaller splittings of the valley degeneracies. We have estimated these splittings in order to obtain upper bounds for the relaxation rate. In general, we find that the relaxation rate is strongly decreased by uniaxial compressive strain in a SiGe-Si-SiGe quantum well, making this strain an important positive design feature. Ge in high concentrations (particularly over 85%) increases the rate, making Si-rich materials preferable. We conclude that SiGe bound electron qubits must meet certain conditions to minimize decoherence but that spin-phonon relaxation does not rule out the solid-state implementation of error-tolerant quantum computing.

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