dorsal/arxiv
View SchemaEfficient high-fidelity quantum computation using matter qubits and linear optics
| Authors | Sean D. Barrett, Pieter Kok |
|---|---|
| Categories | |
| ArXiv ID | quant-ph/0408040 |
| URL | https://arxiv.org/abs/quant-ph/0408040 |
| DOI | 10.1103/PhysRevA.71.060310 |
| Journal | Phys. Rev. A Vol. 71, 060310(R) (2005) |
Abstract
We propose a practical, scalable, and efficient scheme for quantum computation using spatially separated matter qubits and single photon interference effects. The qubit systems can be NV-centers in diamond, Pauli-blockade quantum dots with an excess electron or trapped ions with optical transitions, which are each placed in a cavity and subsequently entangled using a double-heralded single-photon detection scheme. The fidelity of the resulting entanglement is extremely robust against the most important errors such as detector loss, spontaneous emission, and mismatch of cavity parameters. We demonstrate how this entangling operation can be used to efficiently generate cluster states of many qubits, which, together with single qubit operations and readout, can be used to implement universal quantum computation. Existing experimental parameters indicate that high fidelity clusters can be generated with a moderate constant overhead.
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"abstract": "We propose a practical, scalable, and efficient scheme for quantum\ncomputation using spatially separated matter qubits and single photon\ninterference effects. The qubit systems can be NV-centers in diamond,\nPauli-blockade quantum dots with an excess electron or trapped ions with\noptical transitions, which are each placed in a cavity and subsequently\nentangled using a double-heralded single-photon detection scheme. The fidelity\nof the resulting entanglement is extremely robust against the most important\nerrors such as detector loss, spontaneous emission, and mismatch of cavity\nparameters. We demonstrate how this entangling operation can be used to\nefficiently generate cluster states of many qubits, which, together with single\nqubit operations and readout, can be used to implement universal quantum\ncomputation. Existing experimental parameters indicate that high fidelity\nclusters can be generated with a moderate constant overhead.",
"arxiv_id": "quant-ph/0408040",
"authors": [
"Sean D. Barrett",
"Pieter Kok"
],
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"quant-ph"
],
"doi": "10.1103/PhysRevA.71.060310",
"journal_ref": "Phys. Rev. A Vol. 71, 060310(R) (2005)",
"title": "Efficient high-fidelity quantum computation using matter qubits and linear optics",
"url": "https://arxiv.org/abs/quant-ph/0408040"
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