scispace - formally typeset
Open AccessJournal ArticleDOI

Non-Abelian Berry connections for quantum computation

Reads0
Chats0
TLDR
In this article, it is shown how it is possible for a specific model to explicitly determine the loops generating any desired logical gate, thus producing a universal set of unitary transformations.
Abstract
In the holonomic approach to quantum computation, information is encoded in a degenerate eigenspace of a parametric family of Hamiltonians and manipulated by the associated holonomic gates. These are realized in terms of the non-Abelian Berry connection and are obtained by driving the control parameters along adiabatic loops. We show how it is possible for a specific model to explicitly determine the loops generating any desired logical gate, thus producing a universal set of unitary transformations. In a multipartite system unitary transformations can be implemented efficiently by sequences of local holonomic gates. Moreover, a conceptual scheme for obtaining the required Hamiltonian family, based on frequently repeated pulses, is discussed, together with a possible process whereby the initial state can be prepared and the final one can be measured.

read more

Citations
More filters
Journal ArticleDOI

Geometric manipulation of trapped ions for quantum computation.

TL;DR: An experimentally feasible scheme to achieve quantum computation based solely on geometric manipulations of a quantum system by driving the quantum system to undergo appropriate adiabatic cyclic evolutions is proposed.
Journal ArticleDOI

Topology by dissipation in atomic quantum wires

TL;DR: In this article, it was shown that topological features and phenomena occur not only in closed systems, but also in open quantum systems with appropriately engineered dissipation, which can make quantum systems robust to a wide class of microscopic perturbations.
Journal ArticleDOI

Experimental realization of universal geometric quantum gates with solid-state spins

TL;DR: The experiment shows that all-geometric and potentially robust quantum computation can be realized with solid-state spin quantum bits, making use of recent advances in the coherent control of this system.
Book ChapterDOI

Engineered Open Systems and Quantum Simulations with Atoms and Ions

TL;DR: In this paper, the authors review recent theoretical and experimental progress in different directions along these lines, with a particular focus on physical realizations with systems of atoms and ions, and discuss a recent experiment demonstrating the basic building blocks of a full-fledged open-system quantum simulator.
Journal ArticleDOI

Unconventional geometric quantum computation.

TL;DR: It is illustrated in detail that unconventional nontrivial two-qubit geometric gates with built-in fault-tolerant geometric features can be implemented in real physical systems.
Related Papers (5)