2009/02/28 by Eman Hamza, Alain Joye, Günter Stolz · 54 citations
Computer Science · Mathematics · Physics and Astronomy · #Anderson localization #Diagonal #Dimension (graph theory) #Eigenvalues and eigenvectors #Exponential decay #Exponential function #Mathematical analysis #Mathematics #Matrix Theory and Algorithms #Operator (biology) #Physics #Pure mathematics #Quantum chaos and dynamical systems #Quantum mechanics #Random matrix #Spectral Theory in Mathematical Physics #Unitary state #math-ph #math.MP #msc:47B80 #msc:81Q05 #msc:82B44
paper · pdf · doi:10.1007/s11040-009-9068-9
published in Mathematical Physics Analysis and Geometry 12(4), 381-444 (Springer Science+Business Media) · 62 pages
arxiv created 2009/02/28 · openalex publication_date 2009/09/22 · arxiv updated 2015/05/12 · openalex created_date 2025/10/10 · openalex updated_date 2026/08/05
This paper establishes dynamical localization properties of certain families of unitary random operators on the d-dimensional lattice in various regimes. These operators are generalizations of one-dimensional physical models of quantum transport and draw their name from the analogy with the discrete Anderson model of solid state physics. They consist in a product of a deterministic unitary operator and a random unitary operator. The deterministic operator has a band structure, is absolutely continuous and plays the role of the discrete Laplacian. The random operator is diagonal with elements given by i.i.d. random phases distributed according to some absolutely continuous measure and plays the role of the random potential. In dimension one, these operators belong to the family of CMV-matrices in the theory of orthogonal polynomials on the unit circle. We implement the method of Aizenman-Molchanov to prove exponential decay of the fractional moments of the Green function for the unitary Anderson model in the following three regimes: In any dimension, throughout the spectrum at large disorder and near the band edges at arbitrary disorder and, in dimension one, throughout the spectrum at arbitrary disorder. We also prove that exponential decay of fractional moments of the Green function implies dynamical localization, which in turn implies spectral localization. These results complete the analogy with the self-adjoint case where dynamical localization is known to be true in the same three regimes.