Quantum Computing with NMR
arXiv:1011.1382 · doi:10.1016/j.pnmrs.2010.11.001
Abstract
A review of progress in NMR quantum computing and a brief survey of the literature
Commissioned by Progress in NMR Spectroscopy (95 pages, no figures)
References in corpus (65)
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- Quantum Computing
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- Quantum discord and the power of one qubit
- Randomized Benchmarking of Quantum Gates
- Will spin-relaxation times in molecular magnets permit quantum information processing?
- Fault-Tolerant Quantum Dynamical Decoupling
- Solid state quantum memory using the 31P nuclear spin
- Polynomial-time quantum algorithm for the simulation of chemical dynamics
- Observation of Berry's Phase in a Solid State Qubit
- Magnetic field sensing beyond the standard quantum limit using 10-spin NOON states
- Symmetrised Characterisation of Noisy Quantum Processes
- Quenching Spin Decoherence in Diamond through Spin Bath Polarization
- On the role of entanglement and correlations in mixed-state quantum computation
- Tackling Systematic Errors in Quantum Logic Gates with Composite Rotations
- Arbitrarily accurate composite pulses
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- Bang-bang control of fullerene qubits using ultra-fast phase gates
- Benchmarking quantum control methods on a 12-qubit system
- Experimental implementation of an adiabatic quantum optimization algorithm
- A Quantum Adiabatic Algorithm for Factorization and Its Experimental Implementation
- An experimental observation of geometric phases for mixed states using NMR interferometry
- Liquid State NMR as a Test-bed for Developing Quantum Control Methods
- Universal Control of Nuclear Spins Via Anisotropic Hyperfine Interactions
- A Magnetic Resonance Realization of Decoherence-Free Quantum Computation
- Concatenated Control Sequences based on Optimized Dynamic Decoupling
- Entanglement Assisted Metrology
- Robust Ising Gates for Practical Quantum Computation
- Spin-selective reactions of radical pairs act as quantum measurements
- A spin based heat engine: demonstration of multiple rounds of algorithmic cooling
- Factorization of Numbers with the temporal Talbot effect: Optical implementation by a sequence of shaped ultrashort pulses
- Gauss sum factorization with cold atoms
- Preparing high purity initial states for nuclear magnetic resonance quantum computing
- State Transfer and Spin Measurement
- Experimental Realization of Asymmetric Phase-Covariant Quantum Cloning
- Dynamics and Control of a Quasi-1D Spin System
- Arbitrary precision composite pulses for NMR quantum computing
- Principles of Control for Decoherence-Free Subsystems
- Robust quantum gates and a bus architecture for quantum computing with rare-earth-ion doped crystals
- Factorizing Numbers with the Gauss Sum Technique: NMR Implementations
- Experimental Observation of a Topological Phase in the Maximally Entangled State of a Pair of Qubits
- Quantum information processing using strongly-dipolar coupled nuclear spins
- Quantum computation with unknown parameters
- Quantum Information Processing with Delocalized Qubits under Global Control
- Lower bounds on the complexity of simulating quantum gates
- Implementing Grover's Quantum Search on a Para-Hydrogen based Pure State NMR Quantum Computer
- Compiling gate networks on an Ising quantum computer
- Stimulated wave of polarization in 1D Ising chain
- A precise CNOT gate in the presence of large fabrication induced variations of the exchange interaction strength
- Implementation of NMR quantum computation with para-hydrogen derived high purity quantum states
- Preparation of pseudopure state in a cluster of dipolar-coupled spins with "unresolved" spectrum
- Error tolerance in an NMR Implementation of Grover's Fixed-Point Quantum Search Algorithm
- NMR implementation of Factoring Large Numbers with GaußSums: Suppression of Ghost Factors
- Practical Implementations of Twirl Operations
- Entangled states close to the maximally mixed state
- Geometric quantum computation using fictitious spin- 1/2 subspaces of strongly dipolar coupled nuclear spins
- Twelve-spin "Schrodinger cat"
- Fidelity enhancement by logical qubit encoding
- Experimental demonstration of stimulated polarization wave in a chain of nuclear spins
- NMR implementations of Gauss sums
- Preparing pseudo-pure states with controlled-transfer gates
- Suppressing Weak Ising Couplings: Tailored Gates for Quantum Computation
- Single qubit gates by selective excitation with Jump and Return sequences
- Subsystem Pseudo-pure States
- Sharing Polarization within Quantum Subspaces