Precision of single-qubit gates based on Raman transitions
arXiv:quant-ph/0510014 · doi:10.1140/epjd/e2007-00049-1
Abstract
We analyze the achievable precision for single-qubit gates that are based on Raman transitions between two near-degenerate ground states via a virtually excited state. In particular, we study the errors due to non-perfect adiabaticity and due to spontaneous emission from the excited state. For the case of non-adabaticity, we calculate the error as a function of the dimensionless parameter , where is the detuning of the Raman beams and is the gate time. For the case of spontaneous emission, we give an analytical argument that the gate errors are approximately equal to , where is the rotation angle of the one-qubit gate and is the spontaneous decay rate, and we show numerically that this estimate holds to good approximation.
8 pages, 10 figures
References in corpus (6)
- Spin-based all-optical quantum computation with quantum dots: understanding and suppressing decoherence
- Qubit Rotation by STIRAP
- Arbitrary rotation and entanglement of flux SQUID qubits
- Phonon-induced decoherence for a quantum dot spin qubit operated by Raman passage
- Selective spin coupling through a single exciton
- Ultrafast initialization and QND-readout of a spin qubit via control of nanodot-vacuum coupling
Cited by in corpus (11)
- Decoherence of adiabatically steered quantum systems
- High fidelity all-optical control of quantum dot spins: detailed study of the adiabatic approach
- Robust adiabatic approach to optical spin entangling in coupled quantum dots
- Single-qubit operations in the double-donor structure driven by strongly detuned optical pulses
- Single-qubit operations in the double-donor structure driven by optical and voltage pulses
- Interplay and optimization of decoherence mechanisms in the optical control of spin quantum bits implemented on a semiconductor quantum dot
- A cold-atoms based processor for deterministic quantum computation with one qubit in intractably large Hilbert spaces
- Experimental proposal to probe the extended Pauli principle
- Location qubits in a multi-quantum-dot system
- Fidelity of Optically Controlled Single- and Two-Qubit Operations on Coulomb-Coupled Quantum Dots
- Coherence limitations in the optical control of the singlet-triplet qubit in a quantum dot molecule