For generic mesoscopic systems, such as quantum dots or nanoparticles, we study the Anderson orthogonality catastrophe (AOC) and Fermi-edge singularities in photoabsorption spectra in a series of two papers. In the present paper we focus on AOC for a finite number of particles in discrete energy levels where, in contrast to the bulk situation, AOC is not complete. Moreover, fluctuations characteristic for mesoscopic systems lead to a broad distribution of AOC ground-state overlaps. The fluctuations originate dominantly in the levels around the Fermi energy, and we derive an analytic expression for the probability distribution of AOC overlaps in the limit of strong perturbations. We address the formation of a bound state and its importance f...
The Fermi-edge singularity and the Anderson orthogonality catastrophe describe the universal physics...
Both the weakly coupled and strong coupling Anderson impurity problems are characterized by a Fermi-...
17 pages, 4 figures,We use random matrix models to investigate the ground state energy of electrons ...
For generic mesoscopic systems, such as quantum dots or nanoparticles, we study the Anderson orthogo...
For generic mesoscopic systems like quantum dots or nanoparticles, we study the Anderson orthogonali...
10 pages, 8 figuresFor generic mesoscopic systems like quantum dots or nanoparticles, we study the A...
We study Anderson orthogonality catastrophe (AOC) for parabolic quantum dots and focus on the effect...
We address the phenomenon of statistical orthogonality catastrophe in insulating disordered systems....
We study the x-ray edge problem for a chaotic quantum dot or nanoparticle displaying mesoscopic fluc...
We discuss the orthogonality catastrophe between the ground states of the unperturbed and perturbed ...
The Fermi-edge singularity and the Anderson orthogonality catastrophe describe the universal physics...
We present a detailed numerical study of the orthogonality catastrophe exponent for a one-dimensiona...
We quantify the asymptotic vanishing of the ground-state overlap of two non-interacting Fermi gases ...
We study the excited states of interacting fermions in one dimension with particle-hole symmetric di...
The Fermi-edge singularity and the Anderson orthogonality catastrophe describe the universal physics...
Both the weakly coupled and strong coupling Anderson impurity problems are characterized by a Fermi-...
17 pages, 4 figures,We use random matrix models to investigate the ground state energy of electrons ...
For generic mesoscopic systems, such as quantum dots or nanoparticles, we study the Anderson orthogo...
For generic mesoscopic systems like quantum dots or nanoparticles, we study the Anderson orthogonali...
10 pages, 8 figuresFor generic mesoscopic systems like quantum dots or nanoparticles, we study the A...
We study Anderson orthogonality catastrophe (AOC) for parabolic quantum dots and focus on the effect...
We address the phenomenon of statistical orthogonality catastrophe in insulating disordered systems....
We study the x-ray edge problem for a chaotic quantum dot or nanoparticle displaying mesoscopic fluc...
We discuss the orthogonality catastrophe between the ground states of the unperturbed and perturbed ...
The Fermi-edge singularity and the Anderson orthogonality catastrophe describe the universal physics...
We present a detailed numerical study of the orthogonality catastrophe exponent for a one-dimensiona...
We quantify the asymptotic vanishing of the ground-state overlap of two non-interacting Fermi gases ...
We study the excited states of interacting fermions in one dimension with particle-hole symmetric di...
The Fermi-edge singularity and the Anderson orthogonality catastrophe describe the universal physics...
Both the weakly coupled and strong coupling Anderson impurity problems are characterized by a Fermi-...
17 pages, 4 figures,We use random matrix models to investigate the ground state energy of electrons ...