High fidelity readout scheme for rare-earth solid state quantum computing
arXiv:1503.08447 · doi:10.1103/PhysRevA.92.022319
Abstract
We propose and analyze a high fidelity readout scheme for a single instance approach to quantum computing in rare-earth-ion-doped crystals. The scheme is based on using different species of qubit and readout ions, and it is shown that by allowing the closest qubit ion to act as a readout buffer, the readout error can be reduced by more than an order of magnitude. The scheme is shown to be robust against certain experimental variations, such as varying detection efficiencies, and we use the scheme to predict the expected quantum fidelity of a CNOT gate in these solid state systems. In addition, we discuss the potential scalability of the protocol to larger qubit systems. The results are based on parameters which we believed are experimentally feasible with current technology, and which can be simultaneously realized.
7 pages, 5 figures
References in corpus (4)
Cited by in corpus (22)
- All-optical control of long-lived nuclear spins in rare-earth doped nanoparticles
- A Frequency-Multiplexed Coherent Electro-Optic Memory in Rare Earth Doped Nanoparticles
- Mechanical tunability of an ultra-narrow spectral feature with uniaxial stress
- High connectivity quantum processor nodes using single-ion-qubits in rare-earth-ion-doped crystals
- Optical coherence properties of Kramers' rare-earth ions at the nanoscale for quantum applications
- Fast and robust creation of an arbitrary single qubit state by nonadiabatic shortcut pulses in a three-level system
- Rare Earth Ions Doped Mixed Crystals for Fast Quantum Computers with Optical Frequency Qubits
- Coherence Time Extension by Large Scale Optical Spin Polarization in a Rare-Earth Doped Crystal
- Effects of fabrication methods on spin relaxation and crystallite quality in Tm-doped YAlO powders studied using spectral hole burning
- Experimental implementation of precisely tailored light-matter interaction via inverse engineering
- Broadband Quantum Memory in Atomic Ensembles
- Precision measurements of electric-field-induced frequency displacements of an ultranarrow optical transition in ions in a solid
- Microscopic treatment of instantaneous spectral diffusion and its effect on quantum gate fidelities in rare-earth-ion-doped crystals
- Multi-mode Heterodyne Laser Interferometry Realized via Software Defined Radio
- Anomalous sub-kelvin thermal frequency shifts of ultra narrow-linewidth solid state emitters
- First-order thermal insensitivity of the frequency of a narrow spectral hole in a crystal
- Quantum error correction in the NISQ regime for sequential quantum computing
- Thermal-noise Limits to the Frequency Stability of Burned Spectral Holes
- Optical control of the complex phase of a quantum ground state amplitude
- Fast all-optical nuclear spin echo technique based on EIT
- Comparing the performance of practical two-qubit gates for individual Yb ions in yttrium orthovanadate
- Designing gate operations for single ion quantum computing in rare-earth-ion-doped crystals