We propose a design for a quantum-information processor where qubits are encoded into hyperfine states of ions held in a linear array of individually tailored linear microtraps and sitting in a spatially varying magnetic field. The magnetic field gradient introduces spatially dependent qubit transition frequencies and a type of spin-spin interaction between qubits. Single- and multiqubit manipulation is achieved via resonant microwave pulses as in liquid-NMR quantum computation while the qubit readout and reset is achieved through trappedion fluorescence shelving techniques. By adjusting the microtrap configurations we can tailor, in hardware, the qubit resonance frequencies and coupling strengths. We show that the system possesses a sideba...
We propose a scheme to read out the spin of a single electron quantum bit in a surface Paul trap usi...
We first consider the basic requirements for a quantum computer, arguing for the attractiveness of n...
Large-scale quantum computers must be built upon quantum bits that are both highly coherent and loca...
The key research aim of the present thesis is the building of a universal set of quantum gates for a...
Quantum computers offer great potential for significant speedup in executing certain algorithms com...
We review the implementation of quantum information processing using quantum spins and pulsed spin r...
This PhD thesis reports on the development of a wide variety of theoretical and experimental capabil...
This thesis describes experimental work in which the spin and motional states of one and two trappe...
We review the implementation of quantum information processing using quantum spins and pulsed spin r...
We review the implementation of quantum information processing using quantum spins and pulsed spin r...
Quantum computers offer great potential for significant speedup in executing certain algorithms comp...
Quantum information processing systems rely on a broad range of microwave technologies and have spur...
In 1995, Cirac and Zoller proposed the first concrete implementation of a small-scale quantum comput...
The physical implementation of quantum information processing is one of the major challenges of curr...
We first consider the basic requirements for a quantum computer, arguing for the attractiveness of n...
We propose a scheme to read out the spin of a single electron quantum bit in a surface Paul trap usi...
We first consider the basic requirements for a quantum computer, arguing for the attractiveness of n...
Large-scale quantum computers must be built upon quantum bits that are both highly coherent and loca...
The key research aim of the present thesis is the building of a universal set of quantum gates for a...
Quantum computers offer great potential for significant speedup in executing certain algorithms com...
We review the implementation of quantum information processing using quantum spins and pulsed spin r...
This PhD thesis reports on the development of a wide variety of theoretical and experimental capabil...
This thesis describes experimental work in which the spin and motional states of one and two trappe...
We review the implementation of quantum information processing using quantum spins and pulsed spin r...
We review the implementation of quantum information processing using quantum spins and pulsed spin r...
Quantum computers offer great potential for significant speedup in executing certain algorithms comp...
Quantum information processing systems rely on a broad range of microwave technologies and have spur...
In 1995, Cirac and Zoller proposed the first concrete implementation of a small-scale quantum comput...
The physical implementation of quantum information processing is one of the major challenges of curr...
We first consider the basic requirements for a quantum computer, arguing for the attractiveness of n...
We propose a scheme to read out the spin of a single electron quantum bit in a surface Paul trap usi...
We first consider the basic requirements for a quantum computer, arguing for the attractiveness of n...
Large-scale quantum computers must be built upon quantum bits that are both highly coherent and loca...