Ion trap is one of the most promising candidates for quantum computing. High-fidelity gates have been demonstrated in small ion crystals and schemes like ion shuttling have been proposed for larger systems. This thesis discusses the possibility of direct quantum computing on a large ion crystal in a Paul trap, without any shuttling of the ions. We first review a scheme to entangle two ions in a small ion crystal mediated by the collective phonon modes and analyze the gate errors. The generalization to larger systems is divided into three parts. (1) We present numerical methods to solve all the normal modes of the ion crystal, including the micromotion, up to arbitrary precision. The stability of the crystal under infinitesimal perturbation ...
Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Physics, 2009.Cataloged from PDF ve...
Since the development of quantum mechanics almost a century ago, there has been considerable controv...
Quantum computing will be one of the most incredible breakthroughs in science and technology of our ...
Ion trap is one of the most promising candidates for quantum computing. High-fidelity gates have bee...
Trapped atomic ion systems are currently the most advanced platform for quantum information processi...
Quantum computers promise to solve models of important physical processes, optimize complex cost fun...
Trapped ions are a promising platform for universal quantum computing, but are currently limited in ...
© 2020, The Author(s), under exclusive licence to Springer Nature Limited. Generating quantum entang...
We propose a large-scale quantum computer architecture by more easily stabilizing a single large lin...
Experiments directed towards the development of a quantum computer based on trapped atomic ions are ...
We show that a large number of ions forming a 2D Coulomb crystal provides an almost ideal system for...
The coupling of a single ion to an optical cavity is a promising route towards scalable quantum tech...
Abstract We report on progress towards implement-ing mixed ion species quantum information process-i...
We propose a scheme to implement arbitrary-speed quantum entangling gates on two trapped ions immer...
Scaling up controlled quantum systems to involve large numbers of qubits remains one of the outstand...
Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Physics, 2009.Cataloged from PDF ve...
Since the development of quantum mechanics almost a century ago, there has been considerable controv...
Quantum computing will be one of the most incredible breakthroughs in science and technology of our ...
Ion trap is one of the most promising candidates for quantum computing. High-fidelity gates have bee...
Trapped atomic ion systems are currently the most advanced platform for quantum information processi...
Quantum computers promise to solve models of important physical processes, optimize complex cost fun...
Trapped ions are a promising platform for universal quantum computing, but are currently limited in ...
© 2020, The Author(s), under exclusive licence to Springer Nature Limited. Generating quantum entang...
We propose a large-scale quantum computer architecture by more easily stabilizing a single large lin...
Experiments directed towards the development of a quantum computer based on trapped atomic ions are ...
We show that a large number of ions forming a 2D Coulomb crystal provides an almost ideal system for...
The coupling of a single ion to an optical cavity is a promising route towards scalable quantum tech...
Abstract We report on progress towards implement-ing mixed ion species quantum information process-i...
We propose a scheme to implement arbitrary-speed quantum entangling gates on two trapped ions immer...
Scaling up controlled quantum systems to involve large numbers of qubits remains one of the outstand...
Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Physics, 2009.Cataloged from PDF ve...
Since the development of quantum mechanics almost a century ago, there has been considerable controv...
Quantum computing will be one of the most incredible breakthroughs in science and technology of our ...