We present a theoretical analysis of inequivalent classes of interference experiments with non-abelian anyons using an idealized Mach-Zender type interferometer. Because of the non-abelian nature of the braid group action one has to distinguish the different possibilities in which the experiment can be repeated, which lead to different interference patterns. We show that each setup will, after repeated measurement, lead to a situation where the two-particle (or multi-particle) state gets locked into an eigenstate of some well defined operator. Also the probability to end up in such an eigenstate is calculated. Some representative examples are worked out in detail
Quasi-particles are elementary excitations of condensed matter quantum phases. Demonstrating that th...
In contrast to classical physics, quantum mechanics divides particles into two classes-bosons and fe...
Anyons are particlelike excitations of strongly correlated phases of matter with fractional statisti...
We present a theoretical analysis of inequivalent classes of interference experiments with non-abeli...
We develop the general quantum measurement theory of non-Abelian anyons through interference experi...
We examine interferometric measurements of the topological charge of (non-Abelian) anyons. The targe...
We develop the general quantum measurement theory of non-Abelian anyons through interference experim...
We examine interferometric experiments in systems that exhibit non-Abelian braiding statistics, expr...
The emergence of non-Abelian anyons from large collections of interacting elementary particles is a ...
We show how shot noise in an electronic Mach-Zehnder interferometer in the fractional quantum Hall r...
Anyons are particlelike excitations of strongly correlated phases of matter with fractional statisti...
We consider the tunneling current through a double point-contact Fabry-Pérot interferometer such as ...
Quasi-particles are elementary excitations of condensed matter quantum phases. Demonstrating that th...
Topological systems, such as fractional quantum Hall liquids, promise to successfully combat environ...
"A thesis submitted to Macquarie University for the degree of Doctor of Philosophy Department of Phy...
Quasi-particles are elementary excitations of condensed matter quantum phases. Demonstrating that th...
In contrast to classical physics, quantum mechanics divides particles into two classes-bosons and fe...
Anyons are particlelike excitations of strongly correlated phases of matter with fractional statisti...
We present a theoretical analysis of inequivalent classes of interference experiments with non-abeli...
We develop the general quantum measurement theory of non-Abelian anyons through interference experi...
We examine interferometric measurements of the topological charge of (non-Abelian) anyons. The targe...
We develop the general quantum measurement theory of non-Abelian anyons through interference experim...
We examine interferometric experiments in systems that exhibit non-Abelian braiding statistics, expr...
The emergence of non-Abelian anyons from large collections of interacting elementary particles is a ...
We show how shot noise in an electronic Mach-Zehnder interferometer in the fractional quantum Hall r...
Anyons are particlelike excitations of strongly correlated phases of matter with fractional statisti...
We consider the tunneling current through a double point-contact Fabry-Pérot interferometer such as ...
Quasi-particles are elementary excitations of condensed matter quantum phases. Demonstrating that th...
Topological systems, such as fractional quantum Hall liquids, promise to successfully combat environ...
"A thesis submitted to Macquarie University for the degree of Doctor of Philosophy Department of Phy...
Quasi-particles are elementary excitations of condensed matter quantum phases. Demonstrating that th...
In contrast to classical physics, quantum mechanics divides particles into two classes-bosons and fe...
Anyons are particlelike excitations of strongly correlated phases of matter with fractional statisti...