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Processing quantum information in diamond

Journal of Physics Condensed Matter · 2006 · Vol. 18(21) · pp. S807–S824
Jörg WrachtrupFedor Jelezko

Abstract

Quantum computing is an attractive and multidisciplinary field, which became a focus for experimental and theoretical research during the last decade. Among other systems, such as ions in traps and superconducting circuits, solid state based qubits are considered to be promising candidates for use in first experimental tests of quantum hardware. Here we report recent progress in quantum information processing with point defects in diamond. Qubits are defined as single spin states (electron or nuclear). This allows exploration of long coherence times (up to seconds for nuclear spins at cryogenic temperatures). In addition, the optical transition between ground and excited electronic states allows coupling of spin degrees of freedom to the state of the electromagnetic field. Such coupling gives access to spin state read-out via spin-selective scattering of photons. This also allows the use of spin states as robust memory for flying qubits (photons).

Diamond and Carbon-based Materials ResearchElectronic and Structural Properties of OxidesForce Microscopy Techniques and ApplicationsQubitPhysicsSpin engineeringQuantum informationTrapped ion quantum computerQuantum technologyQuantum computerPhotonQuantum networkSpin (aerodynamics)

Funding

  • European Commission
Citations
521
FWCI
11.64
field-weighted impact
References
56
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References
Quantum Zeno effect
Physical Review A · 1990 · 1,126 citations
Quantum memory for photons: Dark-state polaritons
Physical Review A · 2002 · 760 citations
Quantum cryptography
Reviews of Modern Physics · 2002 · 8,142 citations
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